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Analysis of Cytotoxic Granules and Constitutively Produced Extracellular Vesicles from Large Granular Lymphocytic Leukemia Cell Lines

Abstract

Background Large granular lymphocyte leukemias (LGLLs) are rare lymphoproliferative malignancies caused by clonal expansion of granular lymphocytes. T-cell LGLL and natural killer (NK) cell LGLL are defined based on their cellular origin. Their clinical manifestation and pathophysiology vary depending on the subtype and include, e.g., neutropenia, anemia, recurrent infections, and autoimmunity. A limited number of available patient-derived cell lines are considered valuable tools to study the biology of these malignancies. They differ in the expression of lineage-specific surface markers, but generally contain cytotoxic effector molecules in characteristic granules. Methods We investigated the presence and release of lysosome-associated effector proteins in patient-derived LGLL cell lines by flow and imaging cytometry, by Western blotting and by bottom-up proteomics profiling. Results The tested cell lines did not express FasL (CD178), but did express CD26/DPP4+. Intracellularly, we detected major differences in the abundance and subcellular distribution of granzymes, perforin, and granulysin. Similar differences were seen in enriched lysosome-related effector vesicles (LREVs). The proteomics profiling of enriched EVs from an NK-LGLL line (NKL) and a T-LGLL line (MOTN-1), confirmed individual profiles of effector molecules. Conclusion Our analyses underscore the individual distribution of effector proteins but also open new routes to define the role of intra- and extracellular granules in the disease manifestation or pathology of LGLLs.

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Analysis of Cytotoxic Granules and Constitutively Produced Extracellular Vesicles from Large Granular Lymphocytic Leukemia Cell Lines

Author: Ploeger, Lara,Kaleja, Patrick,Tholey, Andreas,Lettau, Marcus,Janssen, Ottmar
Year: 2024
DOI: 10.3390/cells13161310
Source: https://macau.uni-kiel.de/servlets/MCRFileNodeServlet/macau_derivate_00006582/cells-13-01310-v2.pdf
Ci a ion: Ploege , L.; Kaleja, P.;
Tholey, A.; Le au, M.; Janssen, O.
Analysis o Cy o oxic G anules and
Cons i u i ely P oduced Ex acellula
Vesicles om La ge G anula
Lymphocy ic Leukemia Cell Lines.
Cells 2024,13, 1310. h ps://doi.o g/
10.3390/cells13161310
Academic Edi o : Fuguo Liu
Recei ed: 15 July 2024
Re ised: 30 July 2024
Accep ed: 2 Augus 2024
Published: 6 Augus 2024
Copy igh : © 2024 by he au ho s.
Licensee MDPI, Basel, Swi ze land.
This a icle is an open access a icle
dis ibu ed unde he e ms and
condi ions o he C ea i e Commons
A ibu ion (CC BY) license (h ps://
c ea i ecommons.o g/licenses/by/
4.0/).
cells
A icle
Analysis o Cy o oxic G anules and Cons i u i ely P oduced
Ex acellula Vesicles om La ge G anula Lymphocy ic
Leukemia Cell Lines
La a Ploege 1,† , Pa ick Kaleja 2,†, And eas Tholey 2, Ma cus Le au 3,* and O ma Janssen 1,*
1Molecula Immunology—Ins i u e o Immunology, Uni e si y Hospi al Schleswig-Hols ein, Campus Kiel,
24105 Kiel, Ge many
2Sys ema ic P o eomics & Bioanaly ics—Ins i u e o Expe imen al Medicine, Uni e si y o Kiel,
24105 Kiel, Ge many
3S em Cell T ansplan a ion and Immuno he apy—In e nal Medicine II, Uni e si y Hospi al
Schleswig-Hols ein, Campus Kiel, 24105 Kiel, Ge many
*
Co espondence: ma cus.le [email protected] (M.L.); o ma [email protected] (O.J.); Tel.: +49-(0)431-500-22775 (M.L.);
+49-(0)431-500-31031 (O.J.)
†These au ho s con ibu ed equally o his wo k.
Abs ac : Backg ound: La ge g anula lymphocy e leukemias (LGLLs) a e a e lymphop oli e a i e
malignancies caused by clonal expansion o g anula lymphocy es. T-cell LGLL and na u al kille
(NK) cell LGLL a e de ined based on hei cellula o igin. Thei clinical mani es a ion and pa hophysi-
ology a y depending on he sub ype and include, e.g., neu openia, anemia, ecu en in ec ions, and
au oimmuni y. A limi ed numbe o a ailable pa ien -de i ed cell lines a e conside ed aluable ools
o s udy he biology o hese malignancies. They di e in he exp ession o lineage-speci ic su ace
ma ke s, bu gene ally con ain cy o oxic e ec o molecules in cha ac e is ic g anules. Me hods: We in-
es iga ed he p esence and elease o lysosome-associa ed e ec o p o eins in pa ien -de i ed LGLL
cell lines by low and imaging cy ome y, by Wes e n blo ing and by bo om–up p o eomics p o iling.
Resul s: The es ed cell lines did no exp ess FasL (CD178), bu did exp ess CD26/DPP4
+
. In acel-
lula ly, we de ec ed majo di e ences in he abundance and subcellula dis ibu ion o g anzymes,
pe o in, and g anulysin. Simila di e ences we e seen in en iched lysosome- ela ed e ec o esicles
(LREVs). The p o eomics p o iling o en iched EVs om an NK-LGLL line (NKL) and a T-LGLL line
(MOTN-1), con i med indi idual p o iles o e ec o molecules. Conclusion: Ou analyses unde sco e
he indi idual dis ibu ion o e ec o p o eins bu also open new ou es o de ine he ole o in a-
and ex acellula g anules in he disease mani es a ion o pa hology o LGLLs.
Keywo ds: T cells; NK cells; la ge g anula lymphocy e leukemia (LGLL); cy o oxic g anules;
cy o oxic
e ec o p o eins; lysosome- ela ed e ec o esicles (LREV); ex acellula esicles (EV);
exosomes; p o eomics p o iling
1. In oduc ion
La ge g anula lymphocy e leukemia (LGLL) is a a e ch onic lymphop oli e a i e
diso de wi h he e ogeneous clinical p esen a ion. I is cha ac e ized by clonal expansion
o lymphocy es wi h g anula ed cy oplasm [
1
]. The i h edi ion o he WHO classi ica ion
o hema olymphoid umo s places LGLL in he ca ego y o ma u e T-cell and NK cell
leukemias wi h h ee majo sub ypes: T-la ge g anula lymphocy ic leukemia (T-LGLL),
NK-la ge g anula lymphocy ic leukemia (NK-LGLL), and agg essi e NK-cell leukemia
(ANKL). A u he dis inc ion can be made be ween CD4
+
o CD8
+
T-LGLL and
αβ
- o
γδ
-
T-LGLL [
2
]. LGL leukemia accoun s o app oxima ely 2–5% o ch onic lymphop oli e a i e
diseases in he US and Eu ope [
1
]. The incidence is epo ed o be 0.2–0.72 pe one million
pe yea [
3
,
4
]. The median age o onse is 60 yea s and bo h sexes a e simila ly a ec ed [
5
].
Ch onic T-LGLL accoun s o 85% o cases, while NK-LGLL accoun s o less han 10%.
Cells 2024,13, 1310. h ps://doi.o g/10.3390/cells13161310 h ps://www.mdpi.com/jou nal/cells
Cells 2024,13, 1310 2 o 21
Agg essi e NK-LGL leukemia (ANKL) occu s mo e equen ly in Asia and a ec s sligh ly
younge pa ien s, pa icula ly hose wi h a his o y o EBV in ec ion [6].
Diagnosis and cha ac e iza ion o LGLL-sub ypes a e based on cy ology, immunophe-
no ype, and e idence o monoclonali y [
7
]. The pheno ype o T-LGLL is he e ogeneous,
being CD2
+
, CD3
+
, CD8
+
, CD57
+
, CD45RA
+
, CD16
+
, and CD4
−
, wi h o wi hou exp es-
sion o CD56 [
7
,
8
]. As men ioned,
αβ
-TCRs a e o en exp essed, bu
γδ
-TCR
+
cases ha e
also been desc ibed [
6
,
9
,
10
]. O e all, his T-cell pheno ype co esponds o a cons i u i ely
ac i e ma u e memo y T e ec o cell [
8
]. In T-LGLL clones, cy o oxic e ec o p o eins
including g anzymes and pe o in a e equen ly exp essed, al hough in di e en combi-
na ions. A less equen sub ype occu s in 10–15% o cases and is CD4
+
, CD57
+
, CD8
−
o
CD8
+dim
[
9
]. NK-LGLL a e mos ly CD2
+
, CD3
−
, CD8
+
, CD16
+
, CD56
+
and also exp ess
cy o oxic e ec o molecules [8].
Al hough signi ican p og ess has been made in ou unde s anding o gene ic and
molecula al e a ions associa ed wi h LGLL (see ecen o e iews [
1
,
9
,
11
–
14
] o de ails),
he con ibu ion o he LGLL-associa ed cy o oxici y and espec i e e ec o molecules
has only been poo ly add essed. Ini ially, i became e iden ha dys egula ed apop osis
may ep esen a key e en in he de elopmen o LGL malignancy and au oimmuni y.
Pe zo a and Lough an epo ed ha se en ou o he se en LGLL pa ien s es ed displayed
cons i u i e exp ession o FasL gene ansc ip s [
15
]. I was hen obse ed ha leukemic
cells om 9 ou o 11 T-LGLL pa ien s cons i u i ely exp essing bo h Fas and FasL a
high le els we e comple ely esis an o an i-Fas- and an i-CD3-media ed apop osis [
16
].
In e es ingly, he LGLL T cells did no show appa en mu a ions in Fas and in mos cases
unde wen apop osis a e PHA and IL-2 s imula ion [
16
]. O e he yea s, FasL was also
associa ed wi h o he LGLL symp oms, including neu openia. The se um le el o (soluble)
sFasL, which is in ol ed in p e en ing Fas-media ed apop osis, was p oposed as a ma ke
o LGLL ac i i y [17,18].
Fo o he cy o oxic e ec o s, da a poin ing o dys egula ion a e ha dly a ailable.
In ac , g anzyme (G z) B and pe o in (P ) a e o en men ioned as addi ional ma ke s
o asce ain a diagnosis o LGLL, especially o his ological s aining o bone ma ow
biopsies [
5
]. Su p isingly o g anulysin (Gnly), ano he key e ec o o T and NK cells, he
dis ibu ion, elease, o impac in LGLL has appa en ly ne e been add essed. The p esence
o ele a ed le els o sFasL in LGLL pa ien s’ se a migh , howe e , indica e a subs an ial
p oduc ion and elease o cy o oxic g anules om leukemic cells. Al hough sFasL has
been co ela ed wi h he p e en ion o apop osis in leukemic cells, he exposu e o elease
o esicles ca ying he dea h ligand migh ha e b oade implica ions. In pa icula , he
unsa e exposu e o molecules anspo ed in sec e o y esicles o a elease o esicles
ca ying e ec o s as ex acellula esicles migh con ibu e o immune dys unc ion and he
de elopmen o au oimmune diseases.
As a i s a emp o ackle hese issues, we add essed he dis ibu ion and elease
o cy o oxic e ec o molecules in es ablished LGLL cell lines. P e iously, we compa ed
in acellula e ec o esicles om he pa ien -de i ed NK LGLL line NKL [
19
] wi h hose
om he NK cell lymphoblas ic leukemia/lymphoma line YTS [
20
,
21
] and om un ans-
o med cells. We epo ed he e ogeneous p o iles o unc ionally ele an p o eins including
cy o oxic e ec o p o eins in leukemic and ac i a ed human NK cells [22].
We now ollowed his ou e and analyzed pa ien -de i ed LGLL cells, in pa icula
MOTN-1 [
23
], ep esen ing a T-cell LGLL; NKL [
19
] and NK-92 [
24
], ep esen ing wo
NK-LGLLs; and KHYG-1 [
25
], ep esen ing an ANKL. Fo hose cell lines, all indi idual
cellula cha ac e is ics ha e been desc ibed in de ail be o e [
19
,
23
–
25
]. As s a ed abo e,
indi idual LGLL sub ypes di e in he exp ession o lineage-speci ic su ace ma ke s,
display di e en mu a ions in genes o ei he he STAT3/5B o he NOTCH1 pa hway, and
migh p oduce di e en immunomodula o y cy okines.
In e es ingly, in ou hands, all cell lines did exp ess compa able le els o CD26,
bu did no exp ess (memb ane) mFasL. When we analyzed he dis ibu ion o e ec o
p o eins by con en ional and imaging low cy ome y o Wes e n blo ing, we de ec ed
Cells 2024,13, 1310 3 o 21
majo di e ences in he abundance o g anzyme A, g anzyme B, pe o in, and g anulysin.
Simila di e ences we e also seen in cy o oxic g anules en iched as lysosome- ela ed
e ec o esicles (LREVs). In un ans o med T and NK cells, such LREVs, p e iously also
desc ibed as sec e o y lysosomes [
26
], o m he basis o a di e en ial elease o indi idual
cy o oxic e ec o p o eins depending on he s eng h o s imula ion [
27
]. As an example,
we demons a ed ha g anulysin (Gnly) species migh be used as ma ke s o dis inc
en i ies o lysosome- ela ed e ec o esicles (LREVs) since in un ans o med T-cell blas s,
hey seg ega e o di e en sec e o y compa men s wi h g anzyme B o FasL and become
mobilized by ei he classical o non-classical deg anula ion [28].
Due o a po en ial ela ion o LREVs o sec e o y lysosomes o ex acellula esicles
eleased as exosomes o mic opa icles [
27
], we pe o med a compa a i e p o eome p o-
iling o isola ed EV om MOTN-1 and NKL o ob ain a deepe insigh in o indi idual
p o eins’ composi ion and o add ess he po en ial ole o LREVs as in a- and ex acellula
componen s o disease mani es a ion o pa hology.
2. Ma e ials and Me hods
2.1. Cell Lines
No ably, only a ew es ablished cell lines a e a ailable o he s udy o NK-LGLL
biology [
29
,
30
]. Fo ou s udies, we used NK-92 (ACC 488), which was es ablished in 1992
om he pe iphe al blood o a 50-yea -old male wi h LGL-non-Hodgkin lymphoma [
24
]
and NKL (CVCL_0466), which was es ablished in 1996 om he pe iphe al blood o a
63-yea -old
pa ien wi h a mo e agg essi e CD3
−
, CD16
+
, and CD56
+
LGL leukemia [
19
].
Bo h cell lines a e now ca ego ized as NK-LGLL and a e supposed o display s ong
cy o oxici y. This also holds ue o KHYG-1 (ACC 725), an ANKL cell line es ablished in
1997 om he pe iphe al blood o a 45-yea -old woman wi h agg essi e NK leukemia [
25
].
The T-LGLL line MOTN-1 (ACC 559) was es ablished in 2001 om he pe iphe al blood o
a 65-yea -old woman wi h ch onic T-LGLL; in his case, no cy o oxic ac i i y o expanded
cells was desc ibed [
23
]. All cell lines we e kep a 37
◦
C in a humidi ied a mosphe e
wi h 5% CO
2
. The cul u e medium was RPMI 1640 wi h 2 mM glu amine and 25 mM
HEPES (The mo Fishe Scien i ic, Wal ham, MA, USA), supplemen ed wi h 100 U/mL
penicillin/100
µ
g/mL s ep omycin (The mo Fishe Scien i ic) and 10% ( / ) e al cal
se um (FCS, The mo Fishe Scien i ic) o NKL and KHYG-1 o 20% ( / ) FCS o MOTN-1.
NK-92 cells we e cul u ed in Minimal Essen ial Medium
α
(MEM
α
, #32561029, The mo
Fishe Scien i ic) wi h 12.5% ( / ) ho se se um (The mo Fishe Scien i ic) and 12.5% ( / )
FCS. Since g ow h o LGLL cell lines is s ic ly IL-2-dependen , ecombinan IL-2 ( IL-2,
No a is, Basel, Swi ze land) was added a 50 U/mL o NKL, 100 U/mL o NK-92 and
MOTN-1, and 200 U/mL o KHYG-1 expansion.
2.2. Immuno luo escen S aining
FasL and CD26/DPP4 su ace exp ession was checked by con en ional low cy om-
e y [
31
]. A o al o 10
5
cells we e cen i uged in 96-well V-bo om pla es, washed, and
s ained wi h PE-conjuga ed an i-FasL monoclonal an ibody (mab) (clone NOK-1, Fishe
Scien i ic) o an i-CD26/DPP4 mab (clone BA5b, BioLegend, San Diego, CA, USA). A e
incuba ion o 30 min on ice, he cells we e washed wice, ixed in 1% pa a o maldehyde,
and analyzed on a FACS Can o low cy ome e (BD Biosciences, F anklin Lakes, NJ, USA).
Fo s aining o in acellula an igens by low cy ome y, cells we e washed, ixed, and
pe meabilized using he Cy o ix/Cy ope m ki (BD-Biosciences) acco ding o he man-
u ac u e ’s ins uc ions. A e ixa ion, he cells we e analyzed on an FACS Can o low
cy ome e . The ollowing an ibodies we e used: PE-conjuga ed an i-g anzyme A mab
(clone CB9, BioLegend), PE-conjuga ed an i-g anzyme B ecombinan ab (clone QA16A02,
BioLegend), PE-conjuga ed an i-pe o in mab (clone dG9, BioLegend). Fo g anulysin s ain-
ing, we also used an unconjuga ed an i-Gnly mab (clone RF10, MBL In e na ional, Wobu n,
MA, USA) wi h Alexa-Fluo 555-conjuga ed goa an i-mouse polyclonal an ibody (pab)
(The mo Fishe Scien i ic) and unconjuga ed an i-Gnly pab om goa (RD Sys ems, Min-
Cells 2024,13, 1310 4 o 21
neapolis, MN, USA) wi h Alexa-Fluo 555-conjuga ed donkey an i-goa pab, espec i ely.
PE-conjuga ed iso ype-ma ched an ibodies om BioLegend and unconjuga ed an ibodies
om Abcam (Camb idge, UK) se ed as con ols [28].
Fo imaging low cy ome y, 0.5
×
10
6
cells we e washed and suspended in 100
µ
L
LIVE/DEAD Fixable Fa -Red s ain (The mo Fishe Scien i ic) o 15 min, washed again,
and pe meabilized in 50
µ
L o Cy o ix/Cy ope m. A e 30 min, he cells we e washed and
incuba ed wi h a FITC-conjuga ed an i-CD107a mab (clone H4A3, BioLegend) o ano he
30 min. Two addi ional washes we e ollowed by addi ion o PE-conjuga ed an i-g anzyme
A, an i-g anzyme B, an i-pe o in, o an i-CD107a as a con ol. Fo g anulysin s aining, we
also used unconjuga ed an i-Gnly mab RF10 o unconjuga ed an i-Gnly pab wi h Alexa-
Fluo 555-conjuga ed seconda y eagen s and modi ied he s aining p ocedu e acco dingly.
Finally, cells we e ixed in 1% pa a o maldehyde.
2.3. Imaging Flow Cy ome y
Imaging low cy ome y was pe o med exac ly as desc ibed be o e wi h an Im-
ageS eam X Ma k II (Me ck Millipo e, Bu ling on, MA, USA) one-came a sys em wi h
351, 488, 562, 658, and 732 nm lase s [
31
]. Analy e-posi i e cells we e disc imina ed based
on con ols. The B igh De ail Simila i y R3 ea u e was used o quan i y he deg ee o
colocaliza ion in double-posi i e cells only [31].
2.4. Subcellula F ac iona ion
Lysosome- ela ed e ec o esicles (LREVs) we e en iched om expanded cell lines as
desc ibed be o e [
28
,
32
], employing a comme cial lysosome isola ion ki (Me ck/Sigma-
Ald ich) and di e en ial cen i uga ion and ul acen i uga ion.
2.5. Immunop ecipi a ion and Wes e n Blo
To ob ain cell lysa es o Wes e n blo ing, 10
×
10
6
cells we e washed in PBS and lysed
in NP40 lysis bu e (1% ( / ) Nonide
®
P40 (Sigma-Ald ich), 20 mM T is-bu e ,
pH 7.4,
150 mM NaCl, 5 mM EDTA) supplemen ed wi h p o ease and phospha ase inhibi o s o
30 min [28].
Cell deb is was emo ed by cen i uga ion a 14,000
×
g pm and
4◦C
o
10 min
and supe na an s we e boiled in educing sample bu e . To p ecipi a e g anulysin
om supe na an s o uns imula ed o s imula ed LGLL cells, 10
×
10
6
cells we e washed in
PBS and suspended in X- i o medium (The mo Fishe Scien i ic). TPA and/o ionomycin
(bo h om Me ck) we e added a 20 o 500 ng/mL, espec i ely, o s imula e he cells o up
o 2 h in he p esence o absence o 4 mM EGTA and 4 mM MgCl
2
. Following s imula ion,
he cells we e pelle ed, washed wi h PBS, and lysed in NP40 lysis bu e . Supe na an s
we e cen i uged a 3400
×
g o emo e esidual cells and subjec ed o immunop ecipi a ion.
To his end, NP-40 lysa es o supe na an s we e p eclea ed wi h p o ein G-sepha ose beads
(Sigma-Ald ich) o 2 h and incuba ed o e nigh wi h 0.5
µ
g o he polyclonal an i-Gnly
an ibody (R&D Sys ems Inc., Minneapolis, MN, USA) and p o ein G-sepha ose beads a
4
◦
C. A e h ee washes, samples we e boiled in educing sample bu e and subjec ed
o gel elec opho esis on Bis-T is NuPAGE gels (The mo Fishe Scien i ic). P o eins we e
ans e ed o ni ocellulose memb anes (GE Heal hca e, Munich, Ge many) and mem-
b anes we e blocked wi h bo ine se um albumin (Sigma-Ald ich) in TBST (5%, w/ ). The
polyclonal an i-Gnly an ibody was hen used o de ec ion wi h HRP-conjuga ed donkey
an i-goa IgG an ibodies (Abcam) and ECL chemiluminescence eagen s and Hype Film
(GE Heal hca e).
2.6. Gene a ion o Ex acellula Vesicles o P o eome Analyses
To compa e ex acellula esicles om T and NK-LGLL cells, we ocused on NKL and
MOTN-1. Fi s , 4
×
10
8
cells we e washed wice wi h PBS be o e expansion and cul i a ion
o 72 h in 100 mL exosome- educed cul u e medium in he p esence o IL-2. To deple e
exosomes, RPMI 1640 medium supplemen ed wi h 20% FCS and penicillin/s ep omycin
was cen i uged a 4
◦
C and 100,000
×
g(Beckman XL-80 cen i uge, SW 32.1 Ti o o ,
Cells 2024,13, 1310 5 o 21
K e eld, Ge many) o 18 h. Fo NKL cell cul u es, he EV-deple ed supe na an was il e ed
and u he dilu ed wi h se um- ee RPMI 1640 medium con aining penicillin/s ep omycin
o a inal concen a ion o 10% FCS. Pa icle concen a ions in exosome-deple ed cul u e
media we e occasionally es ed ia nanopa icle acking analysis, as de ailed be o e [33].
Ex acellula esicles (EVs) we e isola ed by di e en ial cen i uga ion and ul acen-
i uga ion as desc ibed in [
33
]. B ie ly, cul u e supe na an s o NKL o MOTN-1 cells
kep in EV- educed medium we e cen i uged o 10 min a 300
×
g, 30 min a 2000
×
g
and o 45 min a 10,000
×
g o emo e in ac cells and cell deb is. EVs we e pelle ed
by ul acen i uga ion a 100,000
×
g o 1.5 h, washed once wi h il e ed (0.1 nm) PBS a
100,000
×
g o 1.5 h, and esuspended in 0.3 mL il e ed PBS. EVs’ size and concen a ion
we e de e mined ia nanopa icle acking analysis (NTA) wi h a NanoSigh 300 (NS300)
using NanoSigh so wa e e sion 3.40 (Mal e n Panaly ical, Mal e n, UK).
2.7. LC-MS-Based P o eome Analysis
EV samples we e p o ided in 100
µ
L PBS bu e , and SDS was added o a inal
concen a ion o 1% w/ . Samples we e lysed in a Bio up o Pico (Diagenode, San Diego,
CA, USA) a 4
◦
C (10
×
30 s on, 30 s o ) and 20
µ
L was used o BCA analysis (Pie ce
BCA P o ein Assay Ki , The mo Fishe Scien i ic) acco ding o he manu ac u e ’s p o ocol
(MOTN-1: 0.255
µ
g/
µ
L, NKL: 0.224
µ
g/
µ
L). Pe sample, 10
µ
g p o ein was subjec ed o
educ ion and alkyla ion (12 mM T is(2-ca boxye hyl)phosphine, 40 mM 2-chlo oace amide
o 1 h a
25 ◦C)
and desal ing pe o med acco ding o he SP3 p o ocol [
34
]. SP3 beads
we e added o each sample (1:20 w/wp o ein o beads a io) and e hanol was added o
50% / o induce p o ein binding (15 min a 25
◦
C). Beads we e immobilized using a
magne ic ack, he supe na an s we e disca ded, and he beads washed h ee imes wi h
80% / e hanol. The pelle s we e esuspended wi hin 50 mM TEAB bu e (pH 8.5) wi h
0.2
µ
g ypsin (
1:50 enzyme
o p o ein a io, P omega, Madison, WI, USA), incuba ed o
16 h a 37
◦
C, and he supe na an s we e acidi ied using i luo oace ic acid (TFA) o
LC-MS/MS measu emen .
Samples we e injec ed in iplica e on a Dionex Ul ima e 3000 nano-UHPLC coupled
o a Q Exac i e mass spec ome e (The mo Fishe Scien i ic). Pe injec ion, 1
µ
g p o ein
was loaded on o a ap column (Acclaim Pepmap 100 C-18, 5 mm
×
300
µ
m, 5
µ
m,
100 Å,
Dionex, Sunny ale, CA, USA) and washed o 5 min wi h 3% ACN/0.1% TFA a a low a e
o 30
µ
L/min p io o pep ide sepa a ion using an Acclaim PepMap 100 C-18 analy ical
column (50 cm
×
75
µ
m, 2
µ
m, 100 Å, Dionex). A low a e o 300 nL/min using eluen
A (0.05% o mic acid (FA)) and eluen B (80% ACN/0.04% FA) was used o g adien
sepa a ion (5–50% eluen B). A sp ay ol age o 1.5 kV was applied ia a liquid junc ion
emi e (MS Wil Fused silica emi e , CoAnn Technologies LLC, Richland, WA, USA), wi h
a sou ce empe a u e o 250
◦
C. Full scan MS spec a we e acqui ed be ween 300 and
1800 m/za a esolu ion o 70,000 a m/z200, and op en mos in ense p ecu so ions
we e selec ed o MS/MS analysis (cha ge s a e:
≥
+2, isola ion window:
±
1.5 m/z, HCD
agmen a ion: 27 NCE). MS/MS spec a we e acqui ed a a esolu ion o 17,500 wi h ixed
i s mass a m/z100, lock mass enabled (m/z445.120025), and a dynamic exclusion lis o
40 s.
MS aw iles we e p ocessed by P o eome Disco e e ( e sion 2.2.0.388, The mo
Fishe Scien i ic) using he Seques HT algo i hm agains a human p o ein da abase wi h
addi ional common con amina ing p o eins (only e iewed sequences) om he UniP o
da abase [
35
]. The enzyma ic p ocessing was se o ypsin ( ull-speci ic); maximum
missed clea age e en s: 2; minimal pep ide leng h: 6 AA; p ecu so mass ole ance:
10 ppm;
agmen mass ole ance: 0.02 Da; and alse-disco e y a e se o q = 0.01 by a
Pe cola o node [
36
]. Label- ee quan i ica ion was pe o med by a Mino a ea u e de ec o
wi h a subsequen ea u e mappe (minimum ace leng h: 5; maximum RT shi : 4 min;
mass ole ance: 10 ppm; pa ame e uning: ine). Th ee echnical injec ions we e used
as eplica es o he quan i ica ion s a egy and da a il e ed o high-con idence p o eins
wi h a minimum o wo pep ides/one unique pep ide iden i ica ion. Abundance alues

Cells 2024,13, 1310 6 o 21
we e median no malized and s a is ical es ing was pe o med by a wo-sided Welch - es
wi h Benjamini-Hochbe g FDR calcula ion (4e = 0.01) in Pe seus [
37
]. GO anno a ions
we e added and 1D en ichmen analysis and Fishe ’s exac es we e pe o med wi h a
5% FDR le el. All p o eomics aw da a ha e been uploaded o he P o eomeXchange
Conso ium [38] ia he PRIDE pa ne eposi o y wi h he da ase iden i ie PXD053228.
3. Resul s
3.1. Pheno ypic Peculia i ies o LGLL Cell Lines Analyzed by Flow Cy ome y
I was epo ed ha LGLL cells display a cha ac e is ic su ace deco a ion o lineage-
speci ic ma ke s [
7
] and a cons i u i e exp ession o unc ionally dys egula ed FasLigand
(FasL, CD95L, CD178) and Fas (CD95) [
15
,
16
]. Howe e , acco ding o ou analyses, he ou
well-cha ac e ized cell lines (NK-92, NKL as NK-LGLL, KHYG-1 as ANKL and MOTN-1
as T-LGLL) used in he p esen s udy did no display any (memb ane) mFasL, bu high
amoun s o CD26 (DPP4), which we had p e iously associa ed wi h he deg anula ion o
lysosome- ela ed e ec o esicles (LREVs) [31] (Figu e 1).
To analyze he p esence o cy o oxic e ec o molecules, we pe meabilized he cells o
in acellula s aining o g anzymes (G z) A and B and pe o in (P ). We used PE-conjuga ed
monoclonal an ibodies as speci ied be o e o espec i e iso ype con ol an ibodies (Figu e 1).
The wo NK-LGLLs, NK-92 and NKL, we e posi i e o all e ec o s, wi h a sligh ly highe
luo escence in ensi y o G zA in NKL. In KHYG-1, we de ec ed G zA and P , bu no G zB.
As expec ed om he cha ac e iza ion o MOTN-1, no showing any cy o oxic ac i i y [
23
],
we did no de ec any o he es ed e ec o p o eins by in acellula s aining (Figu e 1).
3.2. Analysis o G anulysin and G anzyme B in En iched LREVs
We ha e shown be o e ha g anulysin (Gnly) species migh be used as ma ke s o
dis inc en i ies o lysosome- ela ed e ec o esicles (LREVs) since, in un ans o med T-cell
blas s, hey seg ega e o di e en sec e o y compa men s and become mobilized by ei he
classical o non-classical deg anula ion [
28
]. In o de o cha ac e ize he dis ibu ion o
LREVs in LGLL cells, we hus analyzed en iched LREVs [
32
] o he p esence o Gnly, G zB,
and LAMP-1 (Figu e 2). To ou su p ise, he Wes e n blo esul s we e qui e he e ogeneous
and indica ed a di e en ial dis ibu ion o LREVs ca ying indi idual e ec o molecules. In
all cells, we de ec ed LAMP-1 as a ma ke o lysosomes in he comple e lysosomal ac ion
and in all indi idual ac ions a e densi y g adien and ul acen i uga ion. No ably,
in NK-92 cells, mos LAMP-1 was de ec ed in ac ions 3 and 4, whe eas in he o he
p epa a ions, mo e LAMP-1 was de ec ed in ac ions 2 and 3. The dis ibu ion o G zB
and Gnly was qui e di e en in he indi idual cell lines. G zB was no de ec ed in MOTN-1
bu was p esen in he c ude lysosomal ac ions o he wo NK-LGLLs and he ANKL
cell lines. Howe e , he subcellula dis ibu ion o G zB di e ed in NK-92 and NKL o
KHYG-1. Whe eas in NK-92, G zB was en iched in hea y ac ions and especially in
ac ion 6 esicles, i was much less in ense in KHYG-1 and ha dly de ec able in NKL
LREVs. Fo Gnly, he pa e ns seen in NK-92 co esponded o wha has been desc ibed o
un ans o med T cells [
28
]. The 9 kDa Gnly, ep esen ing he ma u e o m, was de ec ed
p ima ily in hea ie ac ions associa ed wi h G zB, whe eas he 15 kDa o m was mo e
abundan in he ligh e ac ions 1 o 3. No ably, bo h Gnly species we e s ained in he c ude
lysosomal ac ion o all ou cell lines. In e es ingly, in KHYG-1 and in NKL, al hough in
dis inc ac ions, bo h 9 and 15 kDa Gnly we e associa ed wi h G zB. In NKL, KHYG-1
and MOTN-1, 9 kDa Gnly, howe e , was p ima ily associa ed wi h he ligh e ac ions 1
o 4. Gi en he high simila i y in p o ein dis ibu ion in LREVs om un ans o med cells,
hese esul s migh indica e ha subcellula so ing and dis ibu ion o e ec o p o eins a e
al e ed in LGLL cells.
Cells 2024,13, 1310 7 o 21
Cells 2024, 13, x FOR PEER REVIEW 7 o 24
Figu e 1. Exp ession o FasL, CD26 and cy o oxic e ec o p o eins on/in LGLL cells. Analysis o
su ace FasL and CD26 and in acellula G zA, G zB and P on/in NK-92 (A), NKL (B), KHYG-1
(C) and MOTN-1 (D). Fi s , 105 cells we e s ained di ec ly wi h PE-conjuga ed mAb agains FasL
(NOK1, IgG1) and CD26 (BA5b, IgG2a) o a e pe meabiliza ion wi h Cy o ix/Cy ope m, wi h PE-
conjuga ed mAb agains G zA (CB9, IgG2b), G zB (QA16A02, IgG1), and P (dG9, IgG2b) o wi h
Figu e 1. Exp ession o FasL, CD26 and cy o oxic e ec o p o eins on/in LGLL cells. Analysis o
su ace FasL and CD26 and in acellula G zA, G zB and P on/in NK-92 (A), NKL (B), KHYG-1
(C) and MOTN-1 (D). Fi s , 10
5
cells we e s ained di ec ly wi h PE-conjuga ed mAb agains FasL
(NOK1, IgG1) and CD26 (BA5b, IgG2a) o a e pe meabiliza ion wi h Cy o ix/Cy ope m, wi h
PE-conjuga ed mAb agains G zA (CB9, IgG2b), G zB (QA16A02, IgG1), and P (dG9, IgG2b) o
wi h espec i e iso ype con ol an ibodies. S ained cells we e analyzed a e ixa ion on a BD FACS
Can o low cy ome e . One ep esen a i e expe imen ou o h ee is shown.
Cells 2024,13, 1310 8 o 21
Cells 2024, 13, x FOR PEER REVIEW 9 o 24
Figu e 2. Cy o oxic e ec o p o eins in LGLL cells. Analysis o in e nal G zB and Gnly in NK-92 (A),
NKL (B), KHYG-1 (C) and MOTN-1 (D). Cells we e mildly homogenized wi h a balch homogenize
and subjec ed o di e en ial and densi y cen i uga ion as desc ibed. Whole cell lysa e (WCL), en-
iched o ganelles (EO), c ude lysosomal ac ion (CLF), and he cy osol (CYT) we e sepa a ed o-
ge he wi h ac ions 1–6 o he densi y g adien on Bis-T is NuPAGE gels, ans e ed o ni ocel-
lulose, and es ed o he p esence o LAMP-1 and G zB wi h espec i e mab om BD Bioscience
and BioLegend and HRP-conjuga ed an i-mouse IgG an ibodies om Cy i a. Gnly was s ained wi h
a polyclonal goa an i-Gnly an ibody om R&D ollowed by HRP-conjuga ed an i-goa IgG an i-
bodies om Abcam.
3.3. Imaging o he In acellula Dis ibu ion o Cy o oxic E ec o P o eins
We nex employed imaging low cy ome y o analyze he subcellula localiza ion o
LAMP-1, G zB, and Gnly in NK-92 and NKL cells (Figu es 3 and 4). No ably, almos all
cells s ain posi i e o LAMP-1 (NK-92 97.7%, NKL 99.4%), and 97.1% o NK-92 cells and
97.3% o NKL cells s ain posi i e o G zB. To di e en ia e be ween he 15 and 9 kDa o ms
o Gnly, we employed es ablished Gnly de ec ion eagen s wi h di e en ial binding p op-
e ies. The monoclonal an ibody (mab) RF10 exclusi ely binds o he ull-leng h 15 kDa
a ian , whe eas he polyclonal an ibody (pab) e med pc almos exclusi ely ecognizes
he 9 kDa o m in PFA- ixed samples [28,39]. The 15 kDa a ian o Gnly is exp essed by
only 3.2% o NK-92 cells and 83.1% o NKL cells, whe eas he 9 kDa o m is ound in 28.7%
o NK-92 cells and 54.3% o NKL cells. We also quan i ied he deg ee o colocaliza ion o
cy o oxic e ec o p o eins wi h LAMP-1 in double-posi i e cells in NK-92 (Figu e 3) and
NKL (Figu e 4) cells.
Figu e 2. Cy o oxic e ec o p o eins in LGLL cells. Analysis o in e nal G zB and Gnly in
NK-92
(A),
NKL (B), KHYG-1 (C) and MOTN-1 (D). Cells we e mildly homogenized wi h a balch homogenize
and subjec ed o di e en ial and densi y cen i uga ion as desc ibed. Whole cell lysa e (WCL), en iched
o ganelles (EO), c ude lysosomal ac ion (CLF), and he cy osol (CYT) we e sepa a ed oge he wi h
ac ions 1–6 o he densi y g adien on Bis-T is NuPAGE gels, ans e ed o ni ocellulose, and es ed
o he p esence o LAMP-1 and G zB wi h espec i e mab om BD Bioscience and BioLegend and
HRP-conjuga ed an i-mouse IgG an ibodies om Cy i a. Gnly was s ained wi h a polyclonal goa
an i-Gnly an ibody om R&D ollowed by HRP-conjuga ed an i-goa IgG an ibodies om Abcam.
3.3. Imaging o he In acellula Dis ibu ion o Cy o oxic E ec o P o eins
We nex employed imaging low cy ome y o analyze he subcellula localiza ion
o LAMP-1, G zB, and Gnly in NK-92 and NKL cells (Figu es 3and 4). No ably, almos
all cells s ain posi i e o LAMP-1 (NK-92 97.7%, NKL 99.4%), and 97.1% o NK-92 cells
and 97.3% o NKL cells s ain posi i e o G zB. To di e en ia e be ween he 15 and 9 kDa
o ms o Gnly, we employed es ablished Gnly de ec ion eagen s wi h di e en ial binding
p ope ies. The monoclonal an ibody (mab) RF10 exclusi ely binds o he ull-leng h 15 kDa
a ian , whe eas he polyclonal an ibody (pab) e med pc almos exclusi ely ecognizes
he 9 kDa o m in PFA- ixed samples [
28
,
39
]. The 15 kDa a ian o Gnly is exp essed by
only 3.2% o NK-92 cells and 83.1% o NKL cells, whe eas he 9 kDa o m is ound in 28.7%
o NK-92 cells and 54.3% o NKL cells. We also quan i ied he deg ee o colocaliza ion o
cy o oxic e ec o p o eins wi h LAMP-1 in double-posi i e cells in NK-92 (Figu e 3) and
NKL (Figu e 4) cells.
As expec ed, LAMP-1 is loca ed in g anula s uc u es wi hin bo h NK-92 and NKL
cells and, as a posi i e con ol, nea ly all cells display a b igh de ail simila i y sco e >2
o he colocaliza ion o FITC- and PE-labeled an i-LAMP-1 ab. Su p isingly, he cy o oxic
e ec o p o ein G zB ha dly colocalizes wi h LAMP-1 since less han 10% o double-posi i e
NKL and ha dly any NK-92 cells show a BDS sco e >2 o he G zB/LAMP-1 cos aining. In
NK-92 cells ha exp ess bo h he 15 and he 9 kDa o m o Gnly, only abou 10% o double-
posi i e cells s o e 9 kDa Gnly in LAMP-1-posi i e in acellula g anula, whe eas 44% o
he cells display a BDS >2 o RF10/LAMP-1-cos ainings, indica ing a s o age o
15 kDa
Gnly in LAMP-1
+
LREVs (Figu e 3). No ably, in Gnly
+
NKL cells, bo h he
15 and 9 kDa
o m colocalize wi h LAMP-1, wi h he 15 kDa Gnly/LAMP-1 colocaliza ion being mo e
p onounced (Figu e 4). Thus, compa ed o un ans o med cy o oxic CD8
+αβ
-TCR
+
and
o
γδ
-TCR
+
T cells whe e g anzymes and he 9 kDa Gnly bu usually no he 15 kDa Gnly
associa e wi h in acellula LAMP-1
+
g anula s uc u es, he LGLL cells analyzed he e
appa en ly ha e a mo e he e ogeneous and al e ed e ec o p o ein s o age machine y.
Cells 2024,13, 1310 9 o 21
Cells 2024, 13, x FOR PEER REVIEW 10 o 24
Figu e 3. Colocaliza ion o in acellula LAMP-1 wi h G zB and he 15 kDa (RF10) o 9 kDa (pc)
o m o Gnly in NK-92 cells. Following ixa ion and pe meabiliza ion, cells we e s ained wi h FITC-
conjuga ed an i-LAMP-1 mab. A e washing, cells we e addi ionally s ained wi h PE-conjuga ed
an i-LAMP-1 mab (as a posi i e con ol o colocaliza ion), PE-conjuga ed an i-G zB mab, o wi h
an i-Gnly mab RF10 o a polyclonal an i-Gnly pab (pc) and app op ia e Alexa Fluo 555-conjuga ed
seconda y an ibodies. A o al o 10,000 cells we e acqui ed wi h an ImageS eam Ma k II imaging
low cy ome e . Only ocused, single cells we e conside ed o u he analyses. (A) His og ams dis-
play he geome ic mean alue o he BDS sco e o espec i e s ainings and he pe cen age o cells
displaying a BDS sco e >2. (B) Rep esen a i e images o s ained cells. Scale ba s ep esen 7 μm.
As expec ed, LAMP-1 is loca ed in g anula s uc u es wi hin bo h NK-92 and NKL
cells and, as a posi i e con ol, nea ly all cells display a b igh de ail simila i y sco e >2 o
he colocaliza ion o FITC- and PE-labeled an i-LAMP-1 ab. Su p isingly, he cy o oxic
e ec o p o ein G zB ha dly colocalizes wi h LAMP-1 since less han 10% o double-pos-
i i e NKL and ha dly any NK-92 cells show a BDS sco e >2 o he G zB/LAMP-1 cos ain-
ing. In NK-92 cells ha exp ess bo h he 15 and he 9 kDa o m o Gnly, only abou 10%
o double-posi i e cells s o e 9 kDa Gnly in LAMP-1-posi i e in acellula g anula,
whe eas 44% o he cells display a BDS >2 o RF10/LAMP-1-cos ainings, indica ing a s o -
age o 15 kDa Gnly in LAMP-1+ LREVs (Figu e 3). No ably, in Gnly+ NKL cells, bo h he
15 and 9 kDa o m colocalize wi h LAMP-1, wi h he 15 kDa Gnly/LAMP-1 colocaliza ion
being mo e p onounced (Figu e 4). Thus, compa ed o un ans o med cy o oxic CD8+ αβ-
TCR+ and o γδ-TCR+ T cells whe e g anzymes and he 9 kDa Gnly bu usually no he 15
kDa Gnly associa e wi h in acellula LAMP-1+ g anula s uc u es, he LGLL cells ana-
lyzed he e appa en ly ha e a mo e he e ogeneous and al e ed e ec o p o ein s o age ma-
chine y.
Figu e 3. Colocaliza ion o in acellula LAMP-1 wi h G zB and he 15 kDa (RF10) o 9 kDa (pc)
o m o Gnly in NK-92 cells. Following ixa ion and pe meabiliza ion, cells we e s ained wi h FITC-
conjuga ed an i-LAMP-1 mab. A e washing, cells we e addi ionally s ained wi h PE-conjuga ed
an i-LAMP-1 mab (as a posi i e con ol o colocaliza ion), PE-conjuga ed an i-G zB mab, o wi h
an i-Gnly mab RF10 o a polyclonal an i-Gnly pab (pc) and app op ia e Alexa Fluo 555-conjuga ed
seconda y an ibodies. A o al o 10,000 cells we e acqui ed wi h an ImageS eam Ma k II imaging
low cy ome e . Only ocused, single cells we e conside ed o u he analyses. (A) His og ams
display he geome ic mean alue o he BDS sco e o espec i e s ainings and he pe cen age o cells
displaying a BDS sco e >2. (B) Rep esen a i e images o s ained cells. Scale ba s ep esen 7 µm.
Cells 2024, 13, x FOR PEER REVIEW 11 o 24
Figu e 4. Colocaliza ion o in acellula LAMP-1 wi h G zB and he 15 kDa (RF10) o 9 kDa (pc)
o m o Gnly in NKL cells. Samples we e p ocessed as de ailed in he legend o Figu e 3. (A) His o-
g ams display he geome ic mean alue o he BDS sco e o espec i e s ainings and he pe cen age
o cells displaying a BDS sco e >2. (B) Rep esen a i e images o s ained cells. Scale ba s ep esen 7
μm.
3.4. Di e en ial Ac i a ion-Induced Release o 9 o 15 kDa G anulysin
We p e iously epo ed ha in un ans o med T cells, indi idual LREVs con aining
ei he 15 kDa o 9 kDa Gnly u ilize di e en ou es o mobiliza ion and elease e e ed
o as Ca2+-independen non-classical and Ca2+-dependen classical deg anula ion, espec-
i ely [40]. Gi en he he e ogenous and al e ed e ec o p o ein s o age pa e ns in LGLL
cells, we nex analyzed he signal equi emen s o he elease o he wo o ms o Gnly.
The elease o Gnly in o cell cul u e supe na an s was add essed by immunop ecipi a ion
and Wes e n blo ing a e s imula ion wi h pho boles e (TPA, non-classical deg anula-
ion) o pho boles e and calcium ionopho e (TPA/ionomycin, classical deg anula ion) in
he absence o p esence o he Ca2+ chela o EGTA (Figu e 5).
We used he polyclonal an i-Gnly an ibody (pc) as a p ima y an ibody o Gnly de-
ec ion in Wes e n blo s a e immunop ecipi a ion o Gnly om supe na an s o de e -
mine which o m o Gnly is sec e ed in o he cul u e supe na an upon s imula ion wi h
ei he pho bol es e and/o calcium ionopho e. NKL cells ha dly eleased any Gnly, al -
hough bo h o ms we e appa en ly exp essed, as e idenced by he Wes e n blo o whole
cell lysa es in Figu e 5A. In con as , we eadily p ecipi a ed Gnly wi h he polyclonal an i-
Gnly (pc) an ibody om cul u e supe na an s o uns imula ed o TPA- and TPA/ionomy-
cin-s imula ed NK-92 cells. TPA ac i a ion esul ed in an inc eased and selec i e elease
o he 15 kDa a ian in o he cul u e supe na an , whe eas TPA in combina ion wi h iono-
mycin also induced he elease o he 9 kDa o m. Impo an ly, his Ca2+-dependen elease
igge ed by TPA and ionomycin could be pa ially ab oga ed by Ca2+-chela ion wi h
EGTA. These esul s again highligh he mo e he e ogenous and al e ed s o age and e-
lease pa e ns o cy o oxic e ec o p o eins in LGLL cells.
Figu e 4. Colocaliza ion o in acellula LAMP-1 wi h G zB and he 15 kDa (RF10) o 9 kDa (pc) o m
o Gnly in NKL cells. Samples we e p ocessed as de ailed in he legend o Figu e 3. (A) His og ams
display he geome ic mean alue o he BDS sco e o espec i e s ainings and he pe cen age o cells
displaying a BDS sco e >2. (B) Rep esen a i e images o s ained cells. Scale ba s ep esen 7 µm.
3.4. Di e en ial Ac i a ion-Induced Release o 9 o 15 kDa G anulysin
We p e iously epo ed ha in un ans o med T cells, indi idual LREVs con aining
ei he 15 kDa o 9 kDa Gnly u ilize di e en ou es o mobiliza ion and elease e e ed
o as Ca
2+
-independen non-classical and Ca
2+
-dependen classical deg anula ion, espec-
i ely [
40
]. Gi en he he e ogenous and al e ed e ec o p o ein s o age pa e ns in LGLL
cells, we nex analyzed he signal equi emen s o he elease o he wo o ms o Gnly.
The elease o Gnly in o cell cul u e supe na an s was add essed by immunop ecipi a ion
and Wes e n blo ing a e s imula ion wi h pho boles e (TPA, non-classical deg anula ion)
o pho boles e and calcium ionopho e (TPA/ionomycin, classical deg anula ion) in he
absence o p esence o he Ca2+ chela o EGTA (Figu e 5).
Cells 2024,13, 1310 16 o 21
e ec o molecules and/o cy okines in o he bone ma ow, since he deg ee o ma ow
in il a ion wi h leukemic cells does no co ela e wi h he deg ee o cy openia in pe iphe al
blood [6].
G anzyme B and pe o in a e o en men ioned as addi ional ma ke s o asce ain LGLL
diagnosis, e.g., in his ological s aining o bone ma ow biopsies [
5
]. Fo g anulysin, ano he
key e ec o o T and NK cells, he dis ibu ion, elease, o impac in LGLL has no been
in es iga ed so a . We he e o e add essed he dis ibu ion and elease o LREV-associa ed
cy o oxic e ec o molecules in es ablished LGLL cell lines. P e iously, we compa ed
in acellula e ec o esicles om he pa ien -de i ed NK LGLL line NKL wi h hose om
he NK cell lymphoblas ic leukemia/lymphoma line YT and om un ans o med cells.
We epo ed he e ogeneous p o iles o unc ionally ele an p o eins (including cy o oxic
e ec o p o eins) in indi idual leukemic and ac i a ed human NK cell popula ions [
22
]. In
he p esen s udy, we ollowed his ou e and analyzed pa ien -de i ed LGLL cell lines wi h
a p ima y ocus on cy o oxic e ec o molecules. We chose he well-cha ac e ized T-LGLL
MOTN-1 [
23
], he NK-LGLL lines NKL [
19
] and NK-92 [
24
], and he ANKL KHYG-1 [
25
]
o ou compa a i e s udies. We analyzed he dis ibu ion o o he lysosome-associa ed
e ec o p o eins by con en ional and imaging low cy ome y o Wes e n blo ing. In
con as wi h FasL, high amoun s o dipep idyl pep idase 4 (DPP4, CD26) we e de ec ed on
all es ed LGLL cells. No ably, we ecen ly epo ed ha CD26 is no only a ansmemb ane
signal ansduce bu is also associa ed wi h LREVs and eleased by ac i a ion-induced
deg anula ion [
31
]. No su p isingly, in he p esen s udy, we also ound DPP4 in EVs o
bo h MOTN-1 and NKL cells (P27487, dipep idyl pep idase 4), highligh ing ha DPP4 is
eleased as an ac i e enzyme wi h ex acellula esicles om LGLL cells. Fu he s udies
migh add ess he ole o his dipep idase in disease de elopmen and pa hology [47].
To add ess he p esence o cy o oxic e ec o molecules in LGLL-de i ed cell lines, we
ini ially pe o med in acellula s aining o g anzymes (G zA and G zB) and Pe o in (P ).
The wo NK-LGLL lines NK-92 and NKL we e posi i e o bo h g anzymes and pe o in,
wi h a sligh ly highe luo escence in ensi y o G zA in NKL. In KHYG-1, we de ec ed
G zA and P , bu no G zB. As expec ed, MOTN-1, a T-LGLL p esen ing no cy o oxic
ac i i y [23], did no s ain o any o he es ed e ec o p o eins.
In p e ious analyses, he p ema u e 15 kDa and he ma u e 9 kDa species o Gnly
se ed as ma ke s o dis inc LREV en i ies [
28
]. We i s en iched LREVs by subcellu-
la ac iona ion and s ained he esul ing Wes e n blo s o he p esence o g anulysin,
g anzyme B, and LAMP-1. These analyses al eady poin ed o a di e en ial dis ibu ion
o LREVs ca ying indi idual e ec o molecules. In all cells, we de ec ed LAMP-1 as a
ma ke o lysosomes in he comple e lysosomal ac ion and in mos indi idual subcel-
lula ac ions wi h occasional quali a i e di e ences. The dis ibu ion o G zB and Gnly
p esen ed a he he e ogeneously. G zB was p esen in he c ude lysosomal ac ions o
bo h NK-LGLL and he ANKL cell line. Howe e , whe eas in NK-92, G zB was en iched in
hea y ac ions (i.e., ac ion 6 esicles), i was much less in ense in KHYG-1 and ha dly
de ec able in NKL LREVs. As expec ed, G zB was no de ec ed in LREVs om MOTN-1.
No ably, bo h Gnly species we e s ained in he c ude lysosomal ac ion o all ou cell
lines. The dis ibu ion obse ed in NK-92 co esponded o wha we desc ibed o un ans-
o med T cells [
28
]. The ma u e 9 kDa Gnly was p ima ily de ec ed in hea ie ac ions
associa ed wi h G zB, whe eas 15 kDa Gnly was mo e abundan in he ligh e ac ions
1 o 3.
In e es ingly, in NKL, KHYG-1 and MOTN-1, he ma u e Gnly was associa ed wi h
he ligh e ac ions 1 o 4 and in KHYG-1 and NKL, al hough p esen in dis inc ac ions,
bo h 9 and 15 kDa Gnly we e associa ed wi h G zB. Gi en he epo ed high simila i y in
p o ein dis ibu ion in LREVs om un ans o med cells, hese esul s indica e ha subcel-
lula p o ein so ing and dis ibu ion o e ec o p o eins migh be al e ed in ans o med
LGLL cells. These appa en di e ences a e also e lec ed by he analyses o in acellula
p o ein s o age ia imaging low cy ome y. I is well es ablished ha in un ans o med
cy o oxic lymphocy es e ec o p o eins including g anzymes, pe o in and 9 kDa g an-
ulysin a e sa ely s o ed in in acellula sec e o y g anules whe e hey colocalize wi h he

Cells 2024,13, 1310 17 o 21
lysosomal ma ke p o ein LAMP-1 [
27
,
28
,
40
]. In e es ingly, G zB ha dly colocalizes wi h
LAMP-1 in bo h NKL and NK-92 cells. Mo eo e , in NK-92 cells, 9 kDa is ha dly de ec able
in LAMP-1-posi i e in acellula g anula, whe eas in con as wi h un ans o med cells,
15 kDa
Gnly is s o ed in in acellula lysosomal s uc u es in a subs an ial numbe o cells.
Al hough he o e all Gnly exp ession is much lowe in NKL cells, Gnly
+
cells seem o
s o e bo h 15 and 9 kDa in sec e o y g anules. Thus, compa ed o un ans o med cy o oxic
lymphocy es, bo h NKL and NK-92 cells migh display an al e ed e ec o p o ein so ing
o s o age machine y.
4.2. Di e en ial Ac i a ion-Induced Release o 9 o 15 kDa G anulysin
We epo ed be o e ha in un ans o med T cells, indi idual LREVs con aining ei he
15 kDa o 9 kDa Gnly u ilize ei he Ca
2+
-independen non-classical o Ca
2+
-dependen
classical deg anula ion o hei mobiliza ion and elease [
40
]. In iew o he al e ed LREV
s o age pa e ns in LGLL cells, we in es iga ed signal equi emen s o he elease o he
wo Gnly o ms om NKL and NK-92. We analyzed he elease in o cul u e supe na an s
by immunop ecipi a ion and Wes e n blo ing a e s imula ion wi h TPA o igge non-
classical o TPA/ionomycin o igge classical deg anula ion. Immunop ecipi a es wi h he
polyclonal an i-Gnly an ibody om cell lysa es o NKL and NK-92 e ealed ha he o al
le els o bo h o ms o in acellula Gnly migh be compa able. In e es ingly, we ound
ha NKL cells ha dly elease any Gnly upon s imula ion wi h TPA and/o ionomycin. In
con as , TPA ac i a ion esul ed in a selec i e elease o he 15 kDa a ian om NK-92
cells, whe eas TPA and ionomycin induced he elease o bo h Gnly o ms. Impo an ly,
his Ca
2+
-dependen elease o 9 kDa Gnly igge ed by TPA/ionomycin was educed by
Ca
2+
chela ion wi h EGTA. These esul s again highligh he mo e he e ogenous and al e ed
s o age and elease pa e ns o cy o oxic e ec o p o eins in LGLL cells.
4.3. P o eomic P o iling o LGLL-De i ed Ex acellula Vesicles
The MS-based p o eomic cha ac e iza ion o EV samples is gene ally challenging,
due o he high numbe o expec ed in eg al memb ane p o eins and he limi ed sample
amoun s. While he dep h o analysis, i.e., he numbe o p o ein iden i ica ions is depen-
den on mul iple ac o s, such as he cell ype, he EV elease o he en ichmen me hod, he
p esen ed da ase wi h 1742 iden i ied and 1174 quan i ied p o eins p o ides a compa able
size o o he publica ions in he ield [
48
,
49
]. No ably, o ou compa a i e analysis o T-
and NK-LGLL-de i ed ex acellula esicles, we collec ed cons i u i ely eleased pa icles
om MOTN-1 and NKL cells o e a cul u e pe iod o 72 h in exosome- educed medium.
The isola ed EVs p esen ed as homogeneous popula ions o small- o medium-size esicles
o 170–200 nm in diame e in NTA analyses. In e es ingly, bo h cell ypes eleased compa-
able amoun s o esicles o simila size, esul ing in compa able sample ma e ial o he
subsequen MS analyses.
The s a is ical es ing e ealed ha mo e han hal o he iden i ied p o eins (660)
p o ided no signi ican abundance di e ence in he EV p epa a ions o MOTN-1 and NKL,
while 186 p o eins (119 s ic and 67 mode a e) p esen ed signi ican ly highe abundance
le els in MOTN-1-de i ed EV and 263 p o eins (173 s ic and 90 mode a e) highe le els
in NKL-de i ed EV. Mo eo e , 44 p o eins we e exclusi ely iden i ied in MOTN-1 EV and
21 p o eins exclusi ely in NKL-de i ed esicles (see Supplemen a y Table S2 o indi idual
p o ein anno a ions).
A o al o 766 (43.9%) o he iden i ied p o eins we e associa ed wi h he GO e m
“ex acellula exosomes” (GO:0070062). These included common ma ke p o eins o ming
he co e p o eome o small ex acellula esicles/exosomes such as he p o eins in ol ed
in exosome biogenesis including TSG101 o he p og ammed cell dea h 6-in e ac ing p o-
ein/Alix and syn enin-1, which was ecen ly p oposed as a pu a i e uni e sal bioma ke
o exosomes [
49
]. No ably, in line wi h ou p e ious analyses o T o NK cell-de i ed exo-
somes, we iden i ied he e aspanins CD63 and CD81, bu no CD9 in EVs om MOTN-1
o NKL. Howe e , se e al Rab GTPases, which a e commonly associa ed wi h lysosomal
Cells 2024,13, 1310 18 o 21
a icking and EV o ma ion (i.e., Rab5B, Rab7A, Rab11B and Rab27A) and he lysosome-
associa ed memb ane p o eins LAMP-1 (CD107a) and LAMP-2 (CD107b), we e ound
in bo h EV popula ions. He e, LAMP-1 showed inc eased abundance le els in MOTN-1
samples, whe eas no signi ican di e ence was obse ed o LAMP2. O he cha ac e is ic
and commonly EV-associa ed p o eins such as lo illins, annexins, hea shock p o eins, cell
adhesion molecules o in eg ins (i.e., in eg in
β
1), CD26/DPP4, CD47, and ADAM p o-
eases we e also de ec ed in compa able abundances in EVs om bo h NKL and MOTN-1.
Fo hese p o ein amilies, a equen associa ion o en ichmen in exosomes om di e en
cellula sou ces has been documen ed [49].
Unexpec edly, 2B4 (CD244 [
50
]) and 2DL4 (CD158d [
51
]), wo molecules which ha e
been desc ibed as ac i a ing o inhibi ing NK cell ecep o s, we e iden i ied in he EVs o
bo h NKL and MOTN-1 wi hou signi ican di e ences in abundance, while he inhibi o y
ecep o LILRB1 [
52
] was de ec ed wi h a highe abundance le el in NKL-de i ed esicles.
Impo an ly, p o eins wi h highe abundance le els in NKL-de i ed EVs also included
he men ioned cy o oxic e ec o p o eins G zA, G zB and P . This is in line wi h ou own
analyses and co esponds o he cy o oxic po en ial o his NK-LGLL cell line. In con as ,
MOTN-1-de i ed EVs p esen ed he T-cell su ace glycop o ein CD4 as an indica o o he
o iginal T-cell lineage and he TNF- ecep o 2 in highe abundance. Also, he dea h ecep-
o Fas (CD95) was de ec ed in EVs o bo h cell lines; howe e , i s p esence signi ican ly
inc eased in he MOTN-1-de i ed esicles. In e es ingly, G zK was exclusi ely iden i ied
in EV o MOTN-1. This g anzyme is usually p esen in g anules o NK cells and cy o oxic T
lymphocy es and supposedly ope a es as a cy o oxic p o-apop o ic se ine p o ease owa ds
o eign, in ec ed, o malignan cells. Howe e , nume ous o he in acellula and ex acellu-
la oles o G zK ha e been iden i ied since i s ini ial cloning as g anzyme
3 in 1995 [53,54].
G zK is he only o he yp ase wi hin he g anzyme amily besides G zA and has long
been ega ded as a edundan eplacemen o G zA. No ably, G zK is ac i a ed by emo -
ing a signal dipep ide which di ec s he p e-p o-G zK o he endoplasmic e iculum (ER).
Upon ac i a ion by g anula ca hepsin (o dipep idyl-pep idases?), G zK clea es di e se
subs a es ha we e also iden i ied in EVs om LGLL cells, including nucleosome assembly
p o ein, he e ogeneous nuclea ibonucleop o ein (hnRNP) K,
β
- ubulin, and
α
- ubulin.
Simila o he o he g anzymes, howe e , he “ adi ional” ole o G zK is deba ed and
ex acellula unc ions o G zK in p omo ing in lamma ion and in ec ions a e eme ging
(see [
54
] o a e iew). As men ioned, G zK was exclusi ely iden i ied in MOTN-1 esicles,
which in u n con ained much less G zA, G zB, and P compa ed o NKL-de i ed EV. In
essence, MOTN-1 ep esen s a CD4
+
T-LGLL ha does no display signi ican cy o oxici y
while ca ying an a ypical se o g anula e ec o molecules.
Along his line, when GO e ms we e linked o each indi idual p o ein, MOTN-1 EVs
we e signi ican ly en iched o GO e ms such as p o ein olding and an igen p esen a ion.
In e es ingly, p o eins associa ed wi h memb anes (ex e nal side o plasma memb ane,
in insic o endoplasmic e iculum memb ane, in eg al o o ganelle memb ane) we e
also inc eased in MOTN-1. In con as , in EVs o NKL, he GO e ms p o ein–DNA
complex and nucleosome we e en iched, poin ing o DNA-in e ac ing p o eins such as
his ones. Mo eo e , e ms a ibu ed o he cy oskele on and o cell mo ili y we e en iched
in NKL samples.
In conclusion, as p e iously epo ed o in acellula LREVs om di e en NK cell
lines and ac i a ed NK cells [
22
], ou da a collec ion poin s o a clea ly clono ypic dis ibu-
ion o dis inc e ec o molecules in indi idual LGLL cell lines.
5. Conclusions
La ge g anula lymphocy e leukemias (LGLL) o igina e om ma u e CD3
+
T e ec-
o memo y cells o CD3
−
NK cells and a e cha ac e ized by con aining la ge g anules
ha s o e and anspo cy o oxic e ec o molecules in e alia. LGLL cells equen ly
display uncon olled p oli e a ion and cy o oxici y, bo h esul ing in ch onic malignancy
and au oimmuni y. We demons a ed ha indi idual pa ien -de i ed cell lines o di e -
Cells 2024,13, 1310 19 o 21
en LGLL-sub ypes ca y o elease indi idual and clono ypic combina ions o e ec o
molecules including, e.g., g anzymes, pe o in, and g anulysin. Impo an ly, he indi-
idual dis ibu ion o e ec o s was also de ec ed in p o eome p o iles o cons i u i ely
eleased ex acellula esicles (EVs) o wo ep esen a i e LGLL cell lines. We conclude
ha LGLL-de i ed EVs migh be ega ded as aluable a ge s o he analysis o p o eins
ha con ibu e o LGLL pa hology in indi idual pa ien s and hus migh open new ou es
o indi idualized he apeu ic in e en ions.
Supplemen a y Ma e ials: The ollowing suppo ing in o ma ion can be downloaded a h ps://
www.mdpi.com/a icle/10.3390/cells13161310/s1, Supplemen a y_P o eomics_Tables, con aining
Supplemen a y Table S1—Lis o high-con idence p o ein iden i ica ions; Supplemen a y Table S2—
Resul s o s a is ical Welch - es wi h Benjamini-Hochbe g FDR, q = 0.01; Supplemen a y Table S3—
Resul s o Fishe ’s exac es wi h Benjamini-Hochbe g FDR, q = 0.05; Supplemen a y Table S4—Resul s
o 1D anno a ion en ichmen analysis wi h Benjamini-Hochbe g FDR, q = 0.05;
Supplemen a y Table S5
—
Resul so Fishe ’s exac es wi h Benjamini-Hochbe g FDR, q = 0.05 (selec ed EV p o eins).
Au ho Con ibu ions: Concep ualiza ion, O.J., M.L. and A.T.; me hodology, L.P., M.L. and P.K.;
alida ion, all au ho s; o mal analysis, L.P., M.L. and P.K.; esou ces, O.J. and A.T.; da a cu a ion, L.P.
and P.K.; w i ing—o iginal d a p epa a ion, O.J.; w i ing— e iew and edi ing, L.P., M.L., P.K. and
A.T.; isualiza ion, all au ho s; supe ision, O.J., M.L. and A.T.; unding acquisi ion, O.J. All au ho s
ha e ead and ag eed o he published e sion o he manusc ip .
Funding: This s udy was unded by he Ge man Resea ch Council (DFG) p ojec JA610/7-3 o O.J.
Ins i u ional Re iew Boa d S a emen : No applicable.
In o med Consen S a emen : No applicable.
Da a A ailabili y S a emen : All p o eomics aw da a ha e been uploaded o he P o eomeXchange
Conso ium [38] ia he PRIDE pa ne eposi o y wi h he da ase iden i ie PXD053228.
Acknowledgmen s: P.K. and A.T.: DFG-Clus e o Excellence “P ecision Medicine in In lamma ion
(PMI)”, RTF-V.
Con lic s o In e es : The au ho s decla e no con lic s o in e es .
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