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Mitochondrial microRNAs: A Putative Role in Tissue Regeneration

Abstract

The most famous role of mitochondria is to generate ATP through oxidative phosphorylation, a metabolic pathway that involves a chain of four protein complexes (the electron transport chain, ETC) that generates a proton-motive force that in turn drives the ATP synthesis by the Complex V (ATP synthase). An impressive number of more than 1000 mitochondrial proteins have been discovered. Since mitochondrial proteins have a dual genetic origin, it is predicted that ~99% of these proteins are nuclear-encoded and are synthesized in the cytoplasmatic compartment, being further imported through mitochondrial membrane transporters. The lasting 1% of mitochondrial proteins are encoded by the mitochondrial genome and synthesized by the mitochondrial ribosome (mitoribosome). As a result, an appropriate regulation of mitochondrial protein synthesis is absolutely required to achieve and maintain normal mitochondrial function. Regarding miRNAs in mitochondria, it is well-recognized nowadays that several cellular mechanisms involving mitochondria are regulated by many genetic players that originate from either nuclear- or mitochondrial-encoded small noncoding RNAs (sncRNAs). Growing evidence collected from whole genome and transcriptome sequencing highlight the role of distinct members of this class, from short interfering RNAs (siRNAs) to miRNAs and long noncoding RNAs (lncRNAs). Some of the mechanisms that have been shown to be modulated are the expression of mitochondrial proteins itself, as well as the more complex coordination of mitochondrial structure and dynamics with its function. We devote particular attention to the role of mitochondrial miRNAs and to their role in the modulation of several molecular processes that could ultimately contribute to tissue regeneration accomplishment.

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Mitochondrial microRNAs: A Putative Role in Tissue Regeneration

Author: Rodrigues, Sílvia C.,Cardoso, Renato M. S.,Duarte, Filipe V.
Publisher: MDPI
Year: 2020
DOI: 10.3390/biology9120486
Source: https://estudogeral.uc.pt/bitstream/10316/105813/1/Mitochondrial-microRNAs-A-putative-role-in-tissue-regenerationBiology.pdf
biology
Re iew
Mi ochond ial mic oRNAs: A Pu a i e Role in
Tissue Regene a ion
Síl ia C. Rod igues 1,2,3 , Rena o M. S. Ca doso 4and Filipe V. Dua e 3,*
1Exogenus The apeu ics, 3060-197 Can anhede, Po ugal; [email p o ec ed]
2Doc o al P og amme in Expe imen al Biology and Biomedicine (PDBEB), Ins i u e o In e disciplina y
Resea ch (IIIUC), Uni e si y o Coimb a, 3004-504 Coimb a, Po ugal
3CNC—Cen e o Neu oscience and Cell Biology, Uni e si y o Coimb a, 3004-504 Coimb a, Po ugal
4Lase Leap Technologies, 3025-307 Coimb a, Po ugal; [email p o ec ed]
*Co espondence: [email p o ec ed]
Recei ed: 16 No embe 2020; Accep ed: 19 Decembe 2020; Published: 21 Decembe 2020


Simple Summa y:
Dis inc issue enginee ing s a egies a e cu en ly being de eloped. Cell-based
he apies, implan a ion o syn he ic sca olds o combina ion o a sca old wi h seeded cells a e being
used acco ding o he biologic p emises. Mi ochond ia play a cen al ole in cell li e cycle due o
hei p eponde an ole in ene gy p oduc ion. Recen da a sugges ha small non-coding RNAs
encoded by mi ochond ia DNA such as mic oRNAs egula e a ple ho a o ac o s and consequen ly
signaling pa hways, c ucial in disease pa hogenesis and also pu a i ely in egene a i e p ocesses.
Un eiling mi ochond ial mic oRNAs biological unc ion and hei a ge s will p opel he de elopmen
o inno a i e he apeu ic and diagnos ic ools.
Abs ac :
The mos amous ole o mi ochond ia is o gene a e ATP h ough oxida i e phospho yla ion,
a me abolic pa hway ha in ol es a chain o ou p o ein complexes ( he elec on anspo chain,
ETC) ha gene a es a p o on-mo i e o ce ha in u n d i es he ATP syn hesis by he Complex
V (ATP syn hase). An imp essi e numbe o mo e han 1000 mi ochond ial p o eins ha e been
disco e ed. Since mi ochond ial p o eins ha e a dual gene ic o igin, i is p edic ed ha ~99% o hese
p o eins a e nuclea -encoded and a e syn hesized in he cy oplasma ic compa men , being u he
impo ed h ough mi ochond ial memb ane anspo e s. The las ing 1% o mi ochond ial p o eins a e
encoded by he mi ochond ial genome and syn hesized by he mi ochond ial ibosome (mi o ibosome).
As a esul , an app op ia e egula ion o mi ochond ial p o ein syn hesis is absolu ely equi ed o
achie e and main ain no mal mi ochond ial unc ion. Rega ding miRNAs in mi ochond ia, i is
well- ecognized nowadays ha se e al cellula mechanisms in ol ing mi ochond ia a e egula ed by
many gene ic playe s ha o igina e om ei he nuclea - o mi ochond ial-encoded small noncoding
RNAs (sncRNAs). G owing e idence collec ed om whole genome and ansc ip ome sequencing
highligh he ole o dis inc membe s o his class, om sho in e e ing RNAs (siRNAs) o miRNAs
and long noncoding RNAs (lncRNAs). Some o he mechanisms ha ha e been shown o be modula ed
a e he exp ession o mi ochond ial p o eins i sel , as well as he mo e complex coo dina ion o
mi ochond ial s uc u e and dynamics wi h i s unc ion. We de o e pa icula a en ion o he ole o
mi ochond ial miRNAs and o hei ole in he modula ion o se e al molecula p ocesses ha could
ul ima ely con ibu e o issue egene a ion accomplishmen .
Keywo ds: mic oRNA; mi ochond ia; mi omiRs; issue egene a ion
Biology 2021,9, 486; doi:10.3390/biology9120486 www.mdpi.com/jou nal/biology
Biology 2021,9, 486 2 o 18
1. Regene a i e Biology
Regene a ion is he abili y o animals o es o e, ei he pa ially o en i ely, issues o o gans
ha we e damaged due o auma [
1
]. This egene a i e capaci y s ongly a ies along he animal
kingdom and, while some species can egene a e he whole body om jus small agmen s (hyd a and
plana ia), he e a e o he species, such as mammals, ha ha e a poo egene a i e capaci y, and a
p o ound damage gene ally esul s in sca ing [
2
,
3
]. Since he 18 h cen u y, e olu iona y biologis s
ha e been ying o disclose he mechanisms unde lying he issue egene a ion in animals wi h a
highe egene a i e capaci y han humans, such as salamande s [
4
] and zeb a ish [
5
,
6
]. This di e si y in
he egene a i e capaci y ac oss animal species is a ibu ed o di e en issue epai mechanisms ha
can be classi ied in wo ca ego ies: mo phallaxis and epimo phosis [
7
]. While he i s is common in
lowe species, he la e is usually obse ed in highe o de species being a ibu ed o he egene a ion
o he damaged issue h ough a local cell p oli e a ion mechanism (blas ema) which does no a ec
he emaining o ganism [
8
]. The epimo phic egene a ion has been widely s udied in salamande s,
zeb a ish and o he species and i in ol es di e en s ages ha a e ini ia ed a e an inju y and
culmina ed wi h he pe ec egene a ion o he issue o o gan. In i s ini ial s ages, he epimo phic
egene a ion is e y simila o a wound-healing mechanism. A e inju y, he e is he hemos asis phase
ollowed by a e-epi heliza ion p ocess in he damage epide mis (mig a ion o he ke a inocy es o he
inju ed ci e) [
8
]. As he e-epi heliza ion is comple e, he egene a ion s age s a s wi h he o ma ion o
a mass, composed o he e ogeneous undi e en ia ed cell popula ions (blas ema), and hose cells ha e
he capaci y o di e en ia e in speci ic cells ha a e equi ed o comple e he epai o he issue [
9
].
The e a e some simila i ies be ween epimo phic egene a ion and sca o ma ion: hey a e bo h
igge ed by a hemos a ic p ocess and he e is a e-epi heliza ion p ocess o co e he wounded a ea,
wi h he o ma ion o blas ema being he main di e ence be ween bo h egene a i e p ocesses. I is
known ha in mos mammals, he egene a i e p ocess s alls in he ea ly s ages o wound healing and
hen mo es owa ds a ib o ic epai and sca o ma ion [
9
]. Conside ing his, he ul ima e goal o
egene a i e medicine is he s imula ion o a blas ema ha would ul ima ely d i e he healing p ocess
owa ds egene a ion ins ead o sca ing. Al hough he o e all capaci y o mammals, namely humans,
is somewha limi ed, hei o gans ha e di e en ial sel - enewal capaci ies and, while some o gans
con inuously egene a e, like blood and skin, o he s can egene a e a e inju y, such as li e and bone,
and o he s ha e a es ic ed egene a ion capaci y, like he hea and kidneys [10].
Clinical App oaches
Cu en ly, he e a e h ee di e en app oaches in egene a i e medicine: (i) cell-based he apies,
(ii) implan a ion o syn he ic sca olds o epai and (iii) combina ion o a sca old wi h seeded cells [
11
],
as depic ed in Figu e 1. Cell he apy consis s in he injec ion a he inju ed si e o ei he di e en ia ed
cells o undi e en ia ed s em cells o econs i u e he damaged issue. S em cells, due o hei abili y o
di e en ia e in o se e al cell ypes, eme ged as a undamen al ool in egene a i e medicine. Ini ially,
he he apeu ic po en ial o s em cells was a ibu ed o hei capaci y o di e en ia e in issue-speci ic
cells, he e o e p omo ing issue egene a ion. Nowadays, i is known ha s em cells also ac i ely
sec e e a b oad a ie y o biomolecules (cy okines, chemokines, g ow h ac o s) ha ei he ac on
neighbo ing cells (pa ac ine e ec ) o on hemsel es (au oc ine) o p omo e issue epai .
In egene a i e medicine, human s em cells can be classi ied in o issue-speci ic p ogeni o s em
cells (TSPSCs), emb yonic s em cells (ESCs), umbilical co d s em cells (UCSCs), mesenchymal s em
cells (MSCs) and induced plu ipo en s em cells (iPSCs) [
12
]. The ESCs a e capable o di e en ia ion
in o mesode mal, endode mal and ec ode mal cell lineages, and ha makes hem ou s anding ools
o egene a i e medicine [
13
]. Acco ding o he li e a u e, he ansplan a ion o hESCs o pa ien s
wi h spinal co d inju y (SCI) imp o es sensa ion, body con ol and o e all limb mo emen [
14
].
Mo eo e , ESCs-de i ed ca dio ascula p ogeni o cells egene a e ca diac issue, p o iding i s
mechanical epai [
15
,
16
]. ESCs-de i ed hepa ocy es ha e been success ully accomplished and hey
a e an impo an ool o d ug sc eening and cell he apy [
17
]. The ansplan a ion o ESCs-de i ed
Biology 2021,9, 486 3 o 18
chond ocy es e ec i ely heals knee join de ec s [
18
]. Al hough ESCs ha e eme ged as a p omising
ool in egene a i e medicine, hei use in esea ch has been highly deba ed due o e hical conce ns [
19
].
TSPSCs, in opposi ion o ESCs, gi e ise o speci ic ypes o cells; mo eo e , hei numbe is limi ed,
making collec ion and
in i o
expansion ex emely di icul . When ac i a ed by a signal deli e y,
TSPSCs s a o p oli e a e and mig a e o he inju y si e, whe e hey di e en ia e and acqui e a
speci ic pheno ype con ibu ing o issue epai and enewal. In a clinic en i onmen , a posi i e
co ela ion be ween long- e m me abolic success upon ansplan a ion o panc ea ic p ogeni o cells
was demons a ed, p o ing ha despi e hei limi a ions, he cells ha e an impo an egene a i e
capaci y (induc ion o expandable issue-speci ic p ogeni o cells om human). The MSCs ha e
eme ged as a e sa ile and widely used he apeu ic ool in egene a i e medicine. They a e ound in
se e al
in i o
loca ions such as bone ma ow, skin, panc eas, hea , b ain, lung and o he s [
20
–
22
],
and can be easily expanded wi hou losing hei mul ipo ency capaci y. MSCs, when exposed o speci ic
ac o s, can unde go a ilineage di e en ia ion: os eogenesis, adipogenesis and chond ogenesis [
23
];
howe e , he di e en ia ion owa ds o he cell ypes has also been epo ed in he li e a u e [
24
].
The umbilical co d blood p o ides an immune-compa ible sou ce o s em cells ha is easily and sa ely
collec ed and s o ed by UCB banks [
25
]. Mo eo e , UCBSCs ha e also been conside ed as an al e na i e
o ESCs due o hei con en in mul ipo en s em cells, able o di e en ia e in se e al cell ypes [
26
].
Cu en ly, he egene a i e capaci y o UCBSCs has been desc ibed o se e al diseases ha include
neu onal inju y [27], ca diac in a c ion [28] and bone egene a ion [29].
Biology 2020, 9, 486 3 o 19
Figu e 1. Depic ion o he cu en clinical/ he apeu ic app oaches o issue egene a ion: cell-based
he apies, implan a ion o syn he ic sca olds o epai and combina ion o a sca old wi h seeded
cells.
In egene a i e medicine, human s em cells can be classi ied in o issue-speci ic p ogeni o s em
cells (TSPSCs), emb yonic s em cells (ESCs), umbilical co d s em cells (UCSCs), mesenchymal s em
cells (MSCs) and induced plu ipo en s em cells (iPSCs) [12]. The ESCs a e capable o di e en ia ion
in o mesode mal, endode mal and ec ode mal cell lineages, and ha makes hem ou s anding ools
o egene a i e medicine [13]. Acco ding o he li e a u e, he ansplan a ion o hESCs o pa ien s
wi h spinal co d inju y (SCI) imp o es sensa ion, body con ol and o e all limb mo emen [14].
Mo eo e , ESCs-de i ed ca dio ascula p ogeni o cells egene a e ca diac issue, p o iding i s
mechanical epai [15,16]. ESCs-de i ed hepa ocy es ha e been success ully accomplished and hey
a e an impo an ool o d ug sc eening and cell he apy [17]. The ansplan a ion o ESCs-de i ed
chond ocy es e ec i ely heals knee join de ec s [18]. Al hough ESCs ha e eme ged as a p omising
ool in egene a i e medicine, hei use in esea ch has been highly deba ed due o e hical conce ns
[19]. TSPSCs, in opposi ion o ESCs, gi e ise o speci ic ypes o cells; mo eo e , hei numbe is
limi ed, making collec ion and in i o expansion ex emely di icul . When ac i a ed by a signal
deli e y, TSPSCs s a o p oli e a e and mig a e o he inju y si e, whe e hey di e en ia e and
acqui e a speci ic pheno ype con ibu ing o issue epai and enewal. In a clinic en i onmen , a
posi i e co ela ion be ween long- e m me abolic success upon ansplan a ion o panc ea ic
p ogeni o cells was demons a ed, p o ing ha despi e hei limi a ions, he cells ha e an
impo an egene a i e capaci y (induc ion o expandable issue-speci ic p ogeni o cells om
human). The MSCs ha e eme ged as a e sa ile and widely used he apeu ic ool in egene a i e
medicine. They a e ound in se e al in i o loca ions such as bone ma ow, skin, panc eas, hea ,
b ain, lung and o he s [20–22], and can be easily expanded wi hou losing hei mul ipo ency
capaci y. MSCs, when exposed o speci ic ac o s, can unde go a ilineage di e en ia ion:
os eogenesis, adipogenesis and chond ogenesis [23]; howe e , he di e en ia ion owa ds o he cell
ypes has also been epo ed in he li e a u e [24]. The umbilical co d blood p o ides an
immune-compa ible sou ce o s em cells ha is easily and sa ely collec ed and s o ed by UCB banks
[25]. Mo eo e , UCBSCs ha e also been conside ed as an al e na i e o ESCs due o hei con en in
mul ipo en s em cells, able o di e en ia e in se e al cell ypes [26]. Cu en ly, he egene a i e
capaci y o UCBSCs has been desc ibed o se e al diseases ha include neu onal inju y [27], ca diac
in a c ion [28] and bone egene a ion [29].
Fi s de eloped by Takahashi and Yamanaka in 2006, iPSCs can di e en ia e in o all cell ypes,
and hey can be ob ained om adul soma ic cells by he induc ion o he ou ansc ip ion ac o s
[30,31]. These cells ha e a high p oli e a i e capaci y and ha e been used o de i e skin cells [32,33],
epi helial s em cells [34] and ib oblas s [35], among o he s. Addi ionally, IPSCs ha e been
success ully gene a ed om ib oblas s, isola ed om pa ien s wi h ecessi e dys ophic bullosa,
which we e u he di e en ia ed in ke a inocy es o econs uc human skin s uc u e [36].
Figu e 1.
Depic ion o he cu en clinical/ he apeu ic app oaches o issue egene a ion: cell-based
he apies, implan a ion o syn he ic sca olds o epai and combina ion o a sca old wi h seeded cells.
Fi s de eloped by Takahashi and Yamanaka in 2006, iPSCs can di e en ia e in o all cell ypes,
and hey can be ob ained om adul soma ic cells by he induc ion o he ou ansc ip ion ac o s
[30,31]
.
These cells ha e a high p oli e a i e capaci y and ha e been used o de i e skin cells [
32
,
33
],
epi helial s em cells [
34
] and ib oblas s [
35
], among o he s. Addi ionally, IPSCs ha e been success ully
gene a ed om ib oblas s, isola ed om pa ien s wi h ecessi e dys ophic bullosa, which we e
u he di e en ia ed in ke a inocy es o econs uc human skin s uc u e [
36
]. Al hough he e a e
se e al p e-clinical e idences ha IPSCs may be a p omising he apeu ic app oach in egene a ion,
hei clinical applica ion has been delayed due o hei po en ial umo igenici y [37].
The na u al issues consis in cells and g ow h ac o s ha a e embedded in an ex acellula ma ix
(ECM). The ECM is a complex ib ous nanos uc u ed ma ix ha gi es bo h s uc u al and unc ional
suppo o cells. I con ols he mechanical and biological p ope ies o he issue, playing a key ole in
gene exp ession and cell dynamics (su i al, dea h p oli e a ion, di e en ia ion and mig a ion) [
38
].
Syn he ic o na u al sca olds ha e been s udied in egene a ion, hey ha e a h ee-dimensional (3D)
a chi ec u e and a e designed o eplica e he ECM mechanical and mic oen i onmen al p ope ies [
39
].
When associa ed wi h cells, he sca olds should be ailo ed o p o ide suppo , allowing he cells o
su i e, di e en ia e and mig a e, imp o ing he e icacy o cell ansplan a ion and egene a ion [
40
].
Biology 2021,9, 486 4 o 18
Mo eo e , hese ma e ials can be designed o unc ion as a ese oi , eleasing he he apeu ic
bioac i e molecules in a spa ially con olled manne [
41
]. One o he majo challenges ega ding cell
ansplan a ion in egene a i e medicine is hei long- e m su i al, gi en ha mos o he injec ed
cells die in a ew hou s ei he due o he lack o g ow h ac o s, insu icien suppo om he issue
(low ascula iza ion) o he ansplan a ion p ocedu e (mechanical s ess) [
42
]. The bioma e ials may
be ailo ed o add ess and o e come hese challenges, signi ican ly inc easing he cell su i al in
ansplan a ion. Ma e ial sca olds can modula e and con ol he s em cell a e by p o iding speci ic
en i onmen al condi ions (mechanical and biochemical) [
43
]. By changing he s i ness o se e al
ma e ials, MSCs inc eased he exp ession o ma ke s co esponding o os eogenic, myogenic and
neu ogenic lineages [
44
,
45
]. Mo eo e , he bioma e ial po osi y and adhesion p ope ies a e c ucial
o cell eng a men [
46
]. Nowadays, bioma e ials cons i u e an indispensable ool o egene a i e
medicine he apies, namely cell ansplan a ion, hey allow o imp o e cell su i al, enabling he issue
egene a ion and he clinical ansla ion o cell he apies. Cu en ly, 963 s udies, ei he comple ed
o in phases 3/4, use s em cells and add ess a wide a ay o diseases and pa hological condi ions
(wound healing, in e ili y, bone egene a ion, e c.). F om hose s udies, only 9 in ol e he use o a
sca old o a ma ix o suppo and deli e he cells, sugges ing ha he ield o bioma e ials s ill has a
pa h o a el be o e i s clinical eali y (www.clinical ial.go ).
2. Mi ochond ia miRNA Biology
Mic oRNAs (miRNAs) a e endogenous small, single-s anded molecules o noncoding RNA
(19–23 nucleo ides) ha ep esen a new le el o con ol o gene exp ession. miRNAs ac a he
pos - ansc ip ional le el o modula e p o ein-coding genes, ei he by blocking he ansla ion o
messenge RNA (mRNA) o by ac i ely encou aging i s deg ada ion, and i is well epo ed ha each
miRNA can a ge mul iple genes [
47
]. Gi en ha miRNAs a e now pos ula ed as mas e egula o s
and ine une s o gene exp ession, hese molecules migh enclose ele an diagnos ic, p ognos ic and
he apeu ic applica ions.
miRNAs a e cu en ly documen ed as ele an playe s in almos e e y biological p ocess,
om cell p oli e a ion o di e en ia ion, apop osis and o ganogenesis [
47
,
48
]. The inding and he
s udy o miRNAs has no iceably changed he classical unde s anding o gene exp ession and ou
comp ehension o he biogenesis and unc ion o miRNAs has ma kedly g own in ecen yea s.
Some associa ions be ween miRNA de egula ion and human disease ha e been epo ed in di e en
medical ields [
49
]. The esea ch in his new ‘a ena’ has exposed he eno mous po en ial o miRNAs
as ools o diagnos ics o he apeu ics. Mo e speci ically, se e al s udies ha e al eady explo ed he
modula ion o mi ochond ial DNA gene ics by miRNAs [
50
]. Mi ochond ia, besides chlo oplas s
in plan s, a e he only o ganelles ha possess a sepa a e genome, he so-called mi ochond ial DNA
(m DNA). Mu a ions in his DNA molecule ha e been shown o be in ol ed in an asso men
o bo h physiological (
e.g., hea p oduc ion
, eac i e oxygen species (ROS) p oduc ion, apop osis,
cellula di e en ia ion and aging) and pa hological ai s, including neu odegene a i e diseases,
diabe es, me abolic synd ome and cance s [
51
,
52
]. Addi ionally, he e is a ple ho a o c oss alk signals
ha allow he communica ion be ween he nuclea and mi ochond ial genomes. This mechanism o
egula ion is i al o he ac i i y o he whole cellula machine y, basically by modula ing mi ochond ial
biogenesis and me abolism [53] h ough ecip ocal mi ochond ial- o-nucleus communica ion [54,55].
The mos amous ole o mi ochond ia is o gene a e ATP h ough oxida i e phospho yla ion
ueled by a chain o ou p o ein complexes, he elec on anspo chain (ETC). An imp essi e numbe
o mo e han 1000 mi ochond ial p o eins ha e been disco e ed [
56
]. Mi ochond ial p o eins can
ha e a dis inc gene ic o igin. I is p edic ed ha ~99% o hese p o eins a e nuclea -encoded and
a e syn hesized in he cy oplasma ic compa men , being u he impo ed h ough mi ochond ial
memb ane anspo e s. The las ing 1% o mi ochond ial p o eins a e encoded by he mi ochond ial
genome and he mi ochond ial ibosome (mi o ibosome) is esponsible o he ansla ion o hese
mRNAs. Mo eo e , he mi ochond ion has i s own p o ein syn hesis machine y. As a esul ,
Biology 2021,9, 486 5 o 18
an app op ia e egula ion o mi ochond ial p o ein syn hesis is absolu ely equi ed o achie e and
main ain no mal mi ochond ial unc ion.
Rega ding miRNAs in mi ochond ia, i is well- ecognized nowadays ha se e al cellula
mechanisms in ol ing mi ochond ia a e egula ed by many gene ic playe s ha o igina e om
ei he nuclea - o mi ochond ial-encoded small noncoding RNAs (sncRNAs). G owing e idence
collec ed om whole genome and ansc ip ome sequencing highligh he ole o dis inc membe s o
his class, om sho in e e ing RNAs (siRNAs) o miRNAs and long noncoding RNAs (lncRNAs) [
57
].
Some o he mechanisms ha ha e been shown o be modula ed a e he exp ession o mi ochond ial
p o eins i sel , as well as he mo e complex coo dina ion o mi ochond ial s uc u e and dynamics wi h
i s unc ion [
58
–
60
]. The mechanisms in ol ed in mi ochond ial miRNAs anspo a e now being
inc easingly exposed and he e o e mo e and mo e ligh is being shed upon mi ochond ial miRNAs’
a ge s o de e mine hei ole in his unmapped cellula con ex [
57
,
61
]. Indeed, se e al s udies
ha e al eady disclosed he p esence o miRNAs in mi ochond ia [
59
]. Howe e , he mechanism
by which he nuclea -encoded miRNAs a e impo ed in o mi ochond ia is s ill no ully es ablished
(see Re e ence [
61
] o a ollow-up). On he o he hand, nume ous mi omiRs may be o igina ed s aigh
inside mi ochond ia, om mi ochond ial genome-de i ed mRNA. Undeniably, mi omiRs ypically ac
by egula ing gene exp ession inside mi ochond ia a he pos - ansc ip ional le el [
62
]. Fu he han
ha , some o he mi omiRs may also a ge nuclea -encoded mRNAs localized on he mi ochond ial
su ace [
57
]. Taken all oge he , hese disco e ies clea ly e eal he signi ican ole o mi omiRs
in egula ing mi ochond ial gene exp ession and mi ochond ial unc ions in bo h physiology and
pa hology [63], as summa ized in Figu e 2.
Biology 2020, 9, 486 5 o 19
mechanism o egula ion is i al o he ac i i y o he whole cellula machine y, basically by
modula ing mi ochond ial biogenesis and me abolism [53] h ough ecip ocal
mi ochond ial- o-nucleus communica ion [54,55].
The mos amous ole o mi ochond ia is o gene a e ATP h ough oxida i e phospho yla ion
ueled by a chain o ou p o ein complexes, he elec on anspo chain (ETC). An imp essi e
numbe o mo e han 1000 mi ochond ial p o eins ha e been disco e ed [56]. Mi ochond ial
p o eins can ha e a dis inc gene ic o igin. I is p edic ed ha ~99% o hese p o eins a e
nuclea -encoded and a e syn hesized in he cy oplasma ic compa men , being u he impo ed
h ough mi ochond ial memb ane anspo e s. The las ing 1% o mi ochond ial p o eins a e
encoded by he mi ochond ial genome and he mi ochond ial ibosome (mi o ibosome) is
esponsible o he ansla ion o hese mRNAs. Mo eo e , he mi ochond ion has i s own p o ein
syn hesis machine y. As a esul , an app op ia e egula ion o mi ochond ial p o ein syn hesis is
absolu ely equi ed o achie e and main ain no mal mi ochond ial unc ion.
Rega ding miRNAs in mi ochond ia, i is well- ecognized nowadays ha se e al cellula
mechanisms in ol ing mi ochond ia a e egula ed by many gene ic playe s ha o igina e om
ei he nuclea - o mi ochond ial-encoded small noncoding RNAs (sncRNAs). G owing e idence
collec ed om whole genome and ansc ip ome sequencing highligh he ole o dis inc membe s
o his class, om sho in e e ing RNAs (siRNAs) o miRNAs and long noncoding RNAs
(lncRNAs) [57]. Some o he mechanisms ha ha e been shown o be modula ed a e he exp ession
o mi ochond ial p o eins i sel , as well as he mo e complex coo dina ion o mi ochond ial s uc u e
and dynamics wi h i s unc ion [58–60]. The mechanisms in ol ed in mi ochond ial miRNAs
anspo a e now being inc easingly exposed and he e o e mo e and mo e ligh is being shed upon
mi ochond ial miRNAs’ a ge s o de e mine hei ole in his unmapped cellula con ex [57,61].
Indeed, se e al s udies ha e al eady disclosed he p esence o miRNAs in mi ochond ia [59].
Howe e , he mechanism by which he nuclea -encoded miRNAs a e impo ed in o mi ochond ia is
s ill no ully es ablished (see Re e ence [61] o a ollow-up). On he o he hand, nume ous
mi omiRs may be o igina ed s aigh inside mi ochond ia, om mi ochond ial genome-de i ed
mRNA. Undeniably, mi omiRs ypically ac by egula ing gene exp ession inside mi ochond ia a
he pos - ansc ip ional le el [62]. Fu he han ha , some o he mi omiRs may also a ge
nuclea -encoded mRNAs localized on he mi ochond ial su ace [57]. Taken all oge he , hese
disco e ies clea ly e eal he signi ican ole o mi omiRs in egula ing mi ochond ial gene
exp ession and mi ochond ial unc ions in bo h physiology and pa hology [63], as summa ized in
Figu e 2.
Figu e 2. Modula ion o physiologic and/o pa hologic mechanisms by mi ochond ial miRNAs.
Se e al mechanisms ha con ibu e o physiopa hology equi e some biological unc ions ha a e
modula ed by di e en mi ochond ial mic oRNAs.
Figu e 2.
Modula ion o physiologic and/o pa hologic mechanisms by mi ochond ial miRNAs.
Se e al mechanisms ha con ibu e o physiopa hology equi e some biological unc ions ha a e
modula ed by di e en mi ochond ial mic oRNAs.
3. Mi ochond ial miRNAs—Po en ial Con ibu ion o Regene a ion
Tissue epai and egene a ion depends on miRNA egula ion as hese small molecula silence s
play a undamen al pa in pos - ansc ip ional gene silencing. Mul iple key biological p ocesses
impo an o egene a ion such as cell g ow h and p oli e a ion, di e en ia ion and apop osis, as well as
mi ochond ial unc ion, a e igh ly con olled by hem [
64
,
65
]. Regula ion o miRNA exp ession le els
is c ucial as small changes in basal condi ions a e sequen ially p opaga ed and ampli ied h oughou
di e en biological pa hways, ul ima ely leading o changes in cell pheno ypes [
66
]. The e o e, a ple ho a
o aspec s in issue egene a ion could po en ially be con olled by he manipula ion o miRNAs.
Cu en ly, di e en e idence shows ha bo h nuclea -encoded miRNAs impo ed o mi ochond ia
and mi ochond ial genome-de i ed miRNA, bo h de ined as mi omiRs, may in luence mi ochond ial
dynamics, a undamen al p ocess o issue homeos asis (Table 1) [
67
,
68
]. In ac , egula ion o how

Biology 2021,9, 486 6 o 18
and how much ene gy cells equi e s ongly impac s s em cells’ a e, con olling he abili y o s em
cells o decide when o exi om hei quiescen s a e.
Some mi ochond ial miRNAs we e shown o modula e he di e en ia ion o muscle s em cell in o
unc ional muscle cells by egula ing mi ochond ia biogenesis (Table 1). By i sel , miR-1 exp ession
inc eases p o ein syn hesis, and ATP p oduc ion essen ial o op imal cell di e en ia ion [
69
]. Howe e ,
when miR-1 is simul aneously silenced wi h miR-133a in adul muscle s em cells
in i o
, he exp ession
o some mi ochond ial genes was educed, and a ypical mi ochond ia we e o med. Fu he mo e,
a pa allel
in i o
expe imen in a miR-1/133a double-knockou mouse model con i med comp omised
muscle pe o mance, as a consequence o mi ochond ial dys unc ion and impai ed me abolic
ma u a ion [
70
]. le -7b, which has a dual ole bo h on mi ochond ial dynamics as well as on di e en ia ion
and main enance o adul muscle cells [
71
], inhibi ed skele al muscle g ow h by blocking cell p oli e a ion
and p omo ed cell cycle a es and myo ib oblas p oli e a ion ia he IGF-2 signaling pa hway
in i o
[
72
]. miR-127 was shown o media e muscle s em cell di e en ia ion h ough di ec a ge ing
sphingosine-1-phospha e ecep o 3 (S1P3). Fo ced exp ession o miR-127 powe ed cell di e en ia ion
in o skele al cells bo h
in i o
and
in i o
. In a miR-127 ansgenic mouse su e ing Duchenne muscula
dys ophy, adminis a ion o his biomolecule induced skele al muscle egene a ion and imp o ed
muscula dys ophy h ough s em cell di e en ia ion [
73
]. O e exp ession o o he mi ochond ial
miRNAs, such as miR-125b and miR-128, was also co ela ed wi h inhibi ion o muscle s em cell
di e en ia ion and consequen ly impai ed muscle egene a ion [
74
]. O no e, miR-125b con ibu es
o his inhibi ion h ough insulin-like g ow h ac o 2 (IGF-2) a ge ing [
75
], while miR-128 supp esses
speci ici y p o ein-1 (Sp1) [
76
]. In con as , inhibi ion o miR-128 o e exp esses Sp1 p o ein le els,
abolishing p oli e a ion and inc easing di e en ia ion [
76
]. The di e en ial exp ession o mi omiRs
ha impac adul skele al muscle cell di e en ia ion and main enance a e depic ed in Figu e 3.
Biology 2020, 9, 486 6 o 19
3. Mi ochond ial miRNAs—Po en ial Con ibu ion o Regene a ion
Tissue epai and egene a ion depends on miRNA egula ion as hese small molecula
silence s play a undamen al pa in pos - ansc ip ional gene silencing. Mul iple key biological
p ocesses impo an o egene a ion such as cell g ow h and p oli e a ion, di e en ia ion and
apop osis, as well as mi ochond ial unc ion, a e igh ly con olled by hem [64,65]. Regula ion o
miRNA exp ession le els is c ucial as small changes in basal condi ions a e sequen ially p opaga ed
and ampli ied h oughou di e en biological pa hways, ul ima ely leading o changes in cell
pheno ypes [66]. The e o e, a ple ho a o aspec s in issue egene a ion could po en ially be
con olled by he manipula ion o miRNAs.
Cu en ly, di e en e idence shows ha bo h nuclea -encoded miRNAs impo ed o
mi ochond ia and mi ochond ial genome-de i ed miRNA, bo h de ined as mi omiRs, may in luence
mi ochond ial dynamics, a undamen al p ocess o issue homeos asis (Table 1) [67,68]. In ac ,
egula ion o how and how much ene gy cells equi e s ongly impac s s em cells’ a e, con olling
he abili y o s em cells o decide when o exi om hei quiescen s a e.
Some mi ochond ial miRNAs we e shown o modula e he di e en ia ion o muscle s em cell
in o unc ional muscle cells by egula ing mi ochond ia biogenesis (Table 1). By i sel , miR-1
exp ession inc eases p o ein syn hesis, and ATP p oduc ion essen ial o op imal cell di e en ia ion
[69]. Howe e , when miR-1 is simul aneously silenced wi h miR-133a in adul muscle s em cells in
i o, he exp ession o some mi ochond ial genes was educed, and a ypical mi ochond ia we e
o med. Fu he mo e, a pa allel in i o expe imen in a miR-1/133a double-knockou mouse model
con i med comp omised muscle pe o mance, as a consequence o mi ochond ial dys unc ion and
impai ed me abolic ma u a ion [70]. le -7b, which has a dual ole bo h on mi ochond ial dynamics as
well as on di e en ia ion and main enance o adul muscle cells [71], inhibi ed skele al muscle
g ow h by blocking cell p oli e a ion and p omo ed cell cycle a es and myo ib oblas p oli e a ion
ia he IGF-2 signaling pa hway in i o [72]. miR-127 was shown o media e muscle s em cell
di e en ia ion h ough di ec a ge ing sphingosine-1-phospha e ecep o 3 (S1P3). Fo ced
exp ession o miR-127 powe ed cell di e en ia ion in o skele al cells bo h in i o and in i o. In a
miR-127 ansgenic mouse su e ing Duchenne muscula dys ophy, adminis a ion o his
biomolecule induced skele al muscle egene a ion and imp o ed muscula dys ophy h ough s em
cell di e en ia ion [73]. O e exp ession o o he mi ochond ial miRNAs, such as miR-125b and
miR-128, was also co ela ed wi h inhibi ion o muscle s em cell di e en ia ion and consequen ly
impai ed muscle egene a ion [74]. O no e, miR-125b con ibu es o his inhibi ion h ough
insulin-like g ow h ac o 2 (IGF-2) a ge ing [75], while miR-128 supp esses speci ici y p o ein-1 (Sp1)
[76]. In con as , inhibi ion o miR-128 o e exp esses Sp1 p o ein le els, abolishing p oli e a ion and
inc easing di e en ia ion [76]. The di e en ial exp ession o mi omiRs ha impac adul skele al
muscle cell di e en ia ion and main enance a e depic ed in Figu e 3.
Figu e 3. Di e en ial exp ession o mi ochond ial miRNAs impac adul skele al muscle cell
di e en ia ion and main enance. By modula ing ene gy supply h ough mi ochond ia, hese
mi omiRs a e able o p omo e he ull di e en ia ion o muscle ibe s. Inc eased exp ession o he
Figu e 3.
Di e en ial exp ession o mi ochond ial miRNAs impac adul skele al muscle cell di e en ia ion
and main enance. By modula ing ene gy supply h ough mi ochond ia, hese mi omiRs a e able o
p omo e he ull di e en ia ion o muscle ibe s. Inc eased exp ession o he mi ochond ial gene is
needed o p omo e an adequa e mi ochond ial pe o mance and o allow mo e apid esponses o
physiological needs, namely issue egene a ion.
Tissue egene a ion a e inju y is a complex and a highly me abolically demanding p ocess [
77
].
Thus, egula ion o he mi ochond ial genome by mi omiRs may impac he exp ession o key
componen s d i ing ATP syn hesis, consequen ly in luencing egene a i e mechanisms (Table 1).
Mi ochond ial miR-181c, miR-1, miR-338 and miR-210 ha e been shown o a ge mul iple p o eins
ha modula e he mi ochond ial elec on anspo chain [
57
,
78
], as depic ed in Figu e 4. The impac o
miR-181c was demons a ed bo h
in i o
[
79
] and
in i o
[
80
] and mechanis ically desc ibed by binding
o 3’UTR mi ochond ial cy och ome c oxidase subuni (COX)-1, which a ec s he unc ion o mi ochond ial
elec on anspo chain complex IV. While o ced o e exp ession o miR-181c al e ed mi ochond ial
me abolism and ROS gene a ion, con ibu ing o hea ailu e, i s inhibi ion may be enough o balance
mi ochond ial bioene ge ics, po en ia ing ca diac emodeling o a leas con olling ca diac damages.
Biology 2021,9, 486 7 o 18
Recen ly, Bana a h e al. showed ha he loss o miR-181c, h ough MICU1 up egula ion, a speci ic
p omo e o Sp1, may p o ec he hea om inju y [
81
]. Mi ochond ial miR-338-5p in neu al cell cul u e
sys ems was demons a ed o modula e he exp ession o COX-IV and subuni s o he ATP syn hase
complex [
82
,
83
]. When an i-miR-338 was ans ec ed in o axons, he me abolic oxygen consump ion
was inc eased by abou 50% when compa ed wi h he non a ge ing cells, po en ia ing cell su i al.
Fu he mo e, miR-378 was shown o ha e an impo an ole in ca diac emodeling. This miRNA is
highly exp essed in diabe ic ca diac mi ochond ia and i educes ATP syn hase ac i i y by dec easing
mi ochond ial ATP6 exp ession. This e ec was u he es ed
in i o
by o e exp ession o mi omiR-378
in HL-1 cells [
84
]. Consis en ly,
in i o
deli e y o miR-378-3p an agomi p ese ed ATP6 p o ein
le els which balance he bioene ge ic de ici s, con ibu ing o an adequa e ca diac pump unc ion [
84
].
Biology 2020, 9, 486 7 o 19
mi ochond ial gene is needed o p omo e an adequa e mi ochond ial pe o mance and o allow mo e
apid esponses o physiological needs, namely issue egene a ion.
Tissue egene a ion a e inju y is a complex and a highly me abolically demanding p ocess
[77]. Thus, egula ion o he mi ochond ial genome by mi omiRs may impac he exp ession o key
componen s d i ing ATP syn hesis, consequen ly in luencing egene a i e mechanisms (Table 1).
Mi ochond ial miR-181c, miR-1, miR-338 and miR-210 ha e been shown o a ge mul iple p o eins
ha modula e he mi ochond ial elec on anspo chain [57,78], as depic ed in Figu e 4. The impac
o miR-181c was demons a ed bo h in i o [79] and in i o [80] and mechanis ically desc ibed by
binding o 3’UTR mi ochond ial cy och ome c oxidase subuni (COX)-1, which a ec s he unc ion o
mi ochond ial elec on anspo chain complex IV. While o ced o e exp ession o miR-181c al e ed
mi ochond ial me abolism and ROS gene a ion, con ibu ing o hea ailu e, i s inhibi ion may be
enough o balance mi ochond ial bioene ge ics, po en ia ing ca diac emodeling o a leas
con olling ca diac damages. Recen ly, Bana a h e al. showed ha he loss o miR-181c, h ough
MICU1 up egula ion, a speci ic p omo e o Sp1, may p o ec he hea om inju y [81].
Mi ochond ial miR-338-5p in neu al cell cul u e sys ems was demons a ed o modula e he
exp ession o COX-IV and subuni s o he ATP syn hase complex [82,83]. When an i-miR-338 was
ans ec ed in o axons, he me abolic oxygen consump ion was inc eased by abou 50% when
compa ed wi h he non a ge ing cells, po en ia ing cell su i al. Fu he mo e, miR-378 was shown
o ha e an impo an ole in ca diac emodeling. This miRNA is highly exp essed in diabe ic ca diac
mi ochond ia and i educes ATP syn hase ac i i y by dec easing mi ochond ial ATP6 exp ession.
This e ec was u he es ed in i o by o e exp ession o mi omiR-378 in HL-1 cells [84].
Consis en ly, in i o deli e y o miR-378-3p an agomi p ese ed ATP6 p o ein le els which
balance he bioene ge ic de ici s, con ibu ing o an adequa e ca diac pump unc ion [84].
Figu e 4. Mi ochond ial miRNAs modula e me abolic p ocesses. Mi ochond ial miRNAs ha e been
shown o egula e he mi ochond ial elec on anspo chain by a ge ing mul iple p o eins. By
impac ing mi ochond ial me abolism, ROS gene a ion and ATP p oduc ion, mi omiRs a e impo an
con ibu o s o issue egene a ion.
Ano he way o en ision issue egene a ion is by ecapi ula ing, o some ex en , he emb yonic
p og am ha ga e ise o he o iginal issue [85]. In his way, comp ehending cellula and molecula
mechanisms h oughou emb yonic de elopmen may help o pinpoin some impo an pa hways o
ecapi ula e in he egene a i e p ocess. As expec ed, mi omiRs ha e an impo an ole in
emb yogenesis. O no e, ea ly s ages o ca diogenesis a e p edominan ly suppo ed by miR-1 and
miR-133a, which sus ain he di e en ia ion o emb yonic s em cells and p ecu so s in o
ca diac-speci ic muscle lineage [86]. In ib oblas s and e al hea s, low o absen le els o miR-378
we e desc ibed, whe eas high le els o his molecule we e iden i ied in pos na al inju ed hea s [87].
miR-378, when o e exp essed in ca diomyocy es, enhanced apop osis by di ec a ge ing o IGF
Figu e 4.
Mi ochond ial miRNAs modula e me abolic p ocesses. Mi ochond ial miRNAs ha e
been shown o egula e he mi ochond ial elec on anspo chain by a ge ing mul iple p o eins.
By impac ing mi ochond ial me abolism, ROS gene a ion and ATP p oduc ion, mi omiRs a e impo an
con ibu o s o issue egene a ion.
Ano he way o en ision issue egene a ion is by ecapi ula ing, o some ex en , he emb yonic
p og am ha ga e ise o he o iginal issue [
85
]. In his way, comp ehending cellula and molecula
mechanisms h oughou emb yonic de elopmen may help o pinpoin some impo an pa hways o
ecapi ula e in he egene a i e p ocess. As expec ed, mi omiRs ha e an impo an ole in emb yogenesis.
O no e, ea ly s ages o ca diogenesis a e p edominan ly suppo ed by miR-1 and miR-133a, which sus ain
he di e en ia ion o emb yonic s em cells and p ecu so s in o ca diac-speci ic muscle lineage [
86
].
In ib oblas s and e al hea s, low o absen le els o miR-378 we e desc ibed, whe eas high le els
o his molecule we e iden i ied in pos na al inju ed hea s [
87
]. miR-378, when o e exp essed in
ca diomyocy es, enhanced apop osis by di ec a ge ing o IGF ecep o 1 and educed signaling in
he Ak cascade. Cu iously, inhibi ion o miR-378 p o ec ed ca diomyocy es agains ROS and hypoxia
eoxygena ion-induced cell dea h [
87
]. miR-378, al hough being nuclea -encoded, con ols mi ochond ial
me abolism as well as ene gy homeos asis [88].
Addi ionally, du ing human de elopmen , le els o miR-127-5p dec eased h oughou ime.
In e al issues like he li e and hea , hei me abolic ac i i y is mainly glycoly ic, which is hen
con e ed in oxida i e phospho yla ion. miR-127-5p was sugges ed o possibly pe o m an impo an
ole in con olling he bioene ge ic cell pa e n by a ge ing ATP5B. Consis en ly, he o e exp ession o
his molecule was able o dec ease he amoun o ATP5B p o ein by 50%
in i o
, ac i ely pa icipa ing
in he bioene ge ic changes [89].
Aging leads o inc eased cellula senescence and dec eases he unc ionali y o issue-speci ic s em
and p ogeni o cells which, in u n, is linked o a limi ed cellula egene a i e capaci y. Iden i ying which
molecula and cellula pa hways can po en ially decline he issue homeos asis and egene a i e
Biology 2021,9, 486 8 o 18
capaci y will p omo e he de elopmen o new he apeu ic app oaches. Elimina e senescen cells,
ebalance he ch onic oxida i e s ess and modula e impai ed signaling and p o ein quali y con ol
a e some examples ha may alle ia e issue de e io a ion and es o e he egene a i e capaci y [
90
].
Again, mi ochond ia do play a undamen al ole in he p e iously lis ed mechanisms since i s deple ion
inhibi ed cell senescence, while i p omo ed p oin lamma o y pheno ype and main ained glycolysis as
he cell bioene ge ic mode [
71
]. No ably, se e al mi omiRs ha e been associa ed o bo h senescence
and in lamma o y p ocesses by a ge ing he mi ochond ial genome. miR-146a-5p is one o hese
molecules ha by egula ing he unc ion o complex I and IV o he mi ochond ial elec on anspo
chain is able o con ol bo h in lamma ion and senescence [
71
]. Mi -146-5p has mi ochond ial-encoded
p o eins such as ND1, ND2, ND4, ND5, ND6 and ATP8 as pu a i e a ge s [
71
]. Since complex
I de e mines ROS p oduc ion in dys unc ional mi ochond ia, miR-146-5p is able o egula e his
p oduc ion ups eam, inducing cell senescen pheno ype. Al hough ROS a e impo an in physiological
p ocesses such as p oli e a ion and adap a ion o hypoxia, hei excess causes i e e sible damages [
91
].
The e o e, by inc easing ROS p oduc ion, miR-146a-5p sus ains a ch onic p oin lamma o y and
oxida i e s ess s a e by also a ge ing supe oxide dismu ase 2 (SOD2), an enzyme wi h an ioxidan
po en ial [
92
], and Bcl-2, a known p o ein ha egula es mi ochond ial dynamics, namely usion and
ission [
93
]. Addi ionally, oxida i e s ess induces pe meabili y ansi ion po e opening in mammalian
mi ochond ia, which u he con ibu es o i e e sible mi ochond ia damage and loss o unc ion [
94
].
Recen ly, miR-762 has also been disco e ed as a me abolic egula o . I s supp ession a enua ed he
dec ease in in acellula ATP le els, inc eased ROS p oduc ion and diminished mi ochond ial complex
I enzyme ac i i y. Speci ically, in ca diomyocy es and ischemia/ epe usion inju y, a ge ing miR-762
may be an in e es ing a enue o s udy o amelio a e myoca dial in a c ion damage [95].
Mi omiRs-19b, -20a, -17 and -106 a e he mos down egula ed miRNAs in se e al human senescen
cell and
in i o
aging models [
96
]. Speci ically, in endo helial cells, mi omiR-181a, -34a and -146a we e
shown o be o e exp essed in senescen cells when compa ed wi h young ones. Besides a ge ing
Bcl-2, hese miRNAs induce pe meabili y ansi ion po e opening and s imula e caspase-1 and 3 and
in e e e wi h apop osis suscep ibili y [97].
In u n, le -7b miRNA exp ession inc eases wi h aging. Hmga2 ansc ip ional egula o is a
known a ge o his miRNA whose exp ession is high in e al neu al s em cells. A s udy demons a ed
ha age was co ela ed wi h educed s em cell numbe s and sel - enewal h oughou he cen al
and pe iphe al ne ous sys ems in Hmga2-de icien mice. This e idence sugges s an impo an ole
o le -7b miRNA in he decline in neu al s em cell unc ion whose inhibi ion would po en ia e he
main enance o s emness [
98
]. Also, miR-181a exp ession ises du ing he senescen p ocess in human
de mal ib oblas , wi h i s o e exp ession being su icien o induce cell senescence [99].
As men ioned be o e, mi omiRs ha e been desc ibed as no el playe s in bo h physiologic and
pa hologic condi ions [
100
,
101
]. miR-1 is esponsible o p o ec ing hea s uc u e and unc ions agains
hype ophy, main aining ca dio ascula heal h. Thus, miR-1 is one o he c ucial egula o s o pa hological
ca diac hype ophy by ine- uning he ansla ion o di e en molecules, including euka yo ic ini ia ion
ac o 4E (EIF4E), Me 2a, Ga a4 and his one deace ylase 6 (HDAC6) [
102
,
103
]. MiR-1 also educes he
ca diac hype ophic esponse by nega i ely impac ing calmodulin in ol ed in calcium signaling [
104
]
ia di ec ly a ge ing hea -speci ic a binding p o ein 2 (FABP3). This p o ein in insically co ela es
wi h hea enla gemen and hype ophy in pa ien s. An opposi e ela ionship be ween he exp ession
o miR-1 in myoca dial issue and FABP3 le el in ci cula ion was obse ed [
105
]. O he au ho s ound
ha miR-1 supp esses ibulin-2 exp ession which, by consequence, s ops ac i a ion o TGF
β
signaling
and ex acellula ma ix emodeling in hype ophic hea [
106
,
107
]. In addi ion, miR-133, which is
amply exp essed in animal and human hea muscle issues, blocks hype hy oidism-induced ca diac
hype ophy by silencing he exp ession o ype 1 angio ensin II ecep o [
108
]. This molecule also
educes ca diac emodeling h ough a ge o Ak and i s downs eam signaling molecules, such as
Cdc42, Rho-A and Nel -A/WHSC2 [
109
]. miR-378 and miR-497 a e an ihype ophic biomolecules.
S udies demons a ed ha hey a e able o block IGF ecep o 1, g ow h ac o ecep o bound p o ein
Biology 2021,9, 486 9 o 18
2, kinase supp esso o Ras 1, Ras ac i i y, PI3K-Ak pa hway, Mapk1-MAPK signaling and he
Ra 1-MEK1-ERK1/2 pa hway [
110
], and in e e e wi h ansla ion o Si 4 [
111
]. Also, miR-212/132
amily [
112
] and miR-23a [
113
] a ge Foxo3 ansc ip ion ac o in ca diomyocy es, which alle ia es he
hype ophic clues, while miR-29a-3p hinde s ET-1-induced hype ophic esponse in ca diomyocy es
by di ec ly a ge ing 30UTR o NFATc4 [114].
In he same way, modula ing he magni ude o a ib o ic esponse would po en ia e egene a ion
by swi ching o cellula pa hways ha p og essi ely will d i e sca ing and degene a ion o he issue.
Likewise, se e al mi ochond ial miRNAs exe hei an i ib o ic ac i i y by modula ing he deposi ion
o componen s o ex acellula ma ix (Table 1) [
115
]. MiR-101, h ough a ge ing o TGF
β
RI and
c-Fos, dec eases ex acellula ma ix p o eins’ p oduc ion and p oli e a ion o ib oblas s. Induc ion o
miR-101 exp ession imp o es ca diac pe o mance decline caused by he ib o ic p ocess [
116
,
117
].
MiR-122 con ols TGF-
β
1 exp ession, an impo an ac o o se e e myoca dial ib osis ound o be
down egula ed in pa ien s [
118
]. By inhibi ing u in, miR-24 can supp ess di e en ia ion and mig a ion
o ca diac ib oblas s ia TGF
β
-smad2/3 signaling. Impo an ly,
in i o
, hea unc ion was pa ially
eco e ed by injec ing a syn he ic p ecu so o miR-24 [119].
miR-29a/b/c was shown o p omo e an an i- ib o ic e ec by di ec ly dec easing he p oduc ion
o ECM componen s in di e en issues such as hea , lung, kidney and li e . These miRNAs a ge
di e en collagens, such as FBN1, ELN1, MMP2 and ITGB1 genes [
120
–
123
]. Fo example, in a lung
ib osis
in i o
model d i en by silica, up egula ion o miR-29b p omo ed mesenchymal–epi helial
ansi ions (EMT) and supp essed gene exp ession o ex acellula ma ix- ela ed genes. Concomi an ly,
down egula ion o miR-29b imp o ed EMT by ele a ing he p o ein a io o E-cadhe in/ imen in and
up egula ed ECM- ela ed genes like imen in, alpha-smoo h muscle ac in, collagen ype 1 and Tg b1 [
124
].
miR-1224-5p exp ession showed simila e ec s in a lung ib osis model by a ge ing BECN1 [125].
In con as , miR-27a, ia he TGF-
β
1/Smad3 signaling pa hway, may con ibu e o ib osis in
s ep ozo ocin-induced diabe ic a s [
126
]. O e exp ession o his mi omiR ac i a es he TGF-
β
signaling pa hway, a key pa hway in ib osis pa hogenesis, inc easing he p oduc ion o connec i e
issue g ow h ac o , ib onec in and collagen I [
127
]. miR-21 also has a p o ib o ic ac i i y in lung,
hea and kidney. The p esence o his miRNA inc eases he p oduc ion o TGF-b by wo al e na i e
pa hways. In he canonical way, miR-21 a ge s Smad7 and supp esses Smad2/3 [
128
,
129
], o he wise,
miR-21 ac s ia Sp y1 on he ERK/MAPK pa hway [130].
Collec i ely, hese e idences sugges a possible ole o mi omiRs in issue egene a ion-associa ed
p ocesses. Ne e heless, u he s udies may be conduc ed o con i m he di ec ela ionship be ween
hese molecules and conc e e inju y scena ios.
Table 1. Summa y o mi omiRs unc ion and i s known a ge s.
miR Ta ge genes Func ion Re e ence
miR-1 ↑p o ein syn hesis
↑ATP p oduc ion [69]
EIF4E, Me 2a, Ga a4, HDAC6 Regula ion o ca diac hype ophy [102,103]
FABP3 Hea enla gemen and hype ophy [105]
Fibulin-2 ↓TGFβsignaling
↓ex acellula ma ix emodeling [106]
miR1/miR-133a
↑numbe o mi ochond ial genes
In luence on mi ochond ia mo phology
[70]
↑ca diac s em cell di e en ia ion [86]
Le -7b IGF-2
↓cell p oli e a ion
↑cell cycle a es
↑myo ib oblas p oli e a ion
[72]
Hmga2 ↑cell senescence [98]
miR-127 S1P3 ↑cell di e en ia ion [73]
ATP5B Con ol o bioene ge ic cell pa e n [89]
miR-125b IGF-2 ↓s em cell di e en ia ion [75]
miR-128 Sp1 ↓s em cell di e en ia ion [76]
Biology 2021,9, 486 16 o 18
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