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1 ion to the protein-conducting channel of the mitochondrial inner membrane.
2 r the surface of mitochondria but not inside mitochondrial inner membrane.
3 ghtly associated with the matrix side of the mitochondrial inner membrane.
4  contributes to UPR(mt) signaling across the mitochondrial inner membrane.
5 duction, as a proton motive force across the mitochondrial inner membrane.
6  drive protons across the energy-transducing mitochondrial inner membrane.
7 s an anchor for FB to the matrix side of the mitochondrial inner membrane.
8 the chaperoned translocation of Tim23 to the mitochondrial inner membrane.
9 al carriers Tim23, Tim22, and Tim17 into the mitochondrial inner membrane.
10 itate the exchange of ADP and ATP across the mitochondrial inner membrane.
11 iates with the i-AAA protease complex in the mitochondrial inner membrane.
12 highly similar DSPs on opposing sides of the mitochondrial inner membrane.
13 tor designated Coa1 that associates with the mitochondrial inner membrane.
14 f electrons down the cytochrome chain on the mitochondrial inner membrane.
15  catalytic core of the enzyme located in the mitochondrial inner membrane.
16 hemical driving force for protons across the mitochondrial inner membrane.
17 of the i-AAA protease complex located in the mitochondrial inner membrane.
18 10) that escorts polytopic proteins into the mitochondrial inner membrane.
19 ase (POX) is a redox enzyme localized in the mitochondrial inner membrane.
20 ltrastructural studies revealed disorganized mitochondrial inner membrane.
21 g complex subunit prohibitin-2 (PHB2) at the mitochondrial inner membrane.
22 f presequence-containing proteins across the mitochondrial inner membrane.
23  contains a J domain and is localized to the mitochondrial inner membrane.
24 ies indicate Atp22p to be a component of the mitochondrial inner membrane.
25 ort of hydrophobic carrier proteins into the mitochondrial inner membrane.
26  cassette (ABC) transporter localized to the mitochondrial inner membrane.
27 btained by extensive subfractionation of the mitochondrial inner membrane.
28 -ATP synthase forms a dimeric complex in the mitochondrial inner membrane.
29 ndrial dysfunction and depolarization of the mitochondrial inner membrane.
30 ncoupling proteins at the matrix side of the mitochondrial inner membrane.
31 at they occur at the cytoplasmic side of the mitochondrial inner membrane.
32  absence of a permeability transition at the mitochondrial inner membrane.
33 tes insertion of polytopic proteins into the mitochondrial inner membrane.
34 oA to carnitine for translocation across the mitochondrial inner membrane.
35 an essential import component located in the mitochondrial inner membrane.
36 a proton electrochemical gradient across the mitochondrial inner membrane.
37  protected from proteolytic digestion by the mitochondrial inner membrane.
38 ion pore must occur at the inner face of the mitochondrial inner membrane.
39 proteins that transport ornithine across the mitochondrial inner membrane.
40 tely build a functional and correctly shaped mitochondrial inner membrane.
41 itochondrial extracts fractionating with the mitochondrial inner membrane.
42  a new protein, Tim54p, located in the yeast mitochondrial inner membrane.
43  the enzymatic activity was localized in the mitochondrial inner membrane.
44 eads to aberrant protein accumulation in the mitochondrial inner membrane.
45 ransfer through the respiratory chain on the mitochondrial inner membrane.
46 mponent of the protein import complex of the mitochondrial inner membrane.
47 ansmembrane helix 1 toward the C-side of the mitochondrial inner membrane.
48 ), a protein of the respiration chain in the mitochondrial inner membrane.
49 be embedded with the correct topology in the mitochondrial inner membrane.
50 3 complex for their translocation across the mitochondrial inner membrane.
51  the chloroplast thylakoid membrane, and the mitochondrial inner membrane.
52  fusion and protein complex formation in the mitochondrial inner membrane.
53 ainst the electrostatic potential across the mitochondrial inner membrane.
54 duction, as a proton motive force across the mitochondrial inner membrane.
55       Upon entry, they are embedded into the mitochondrial inner membrane.
56  mitochondrial protein that localizes to the mitochondrial inner membrane.
57 in (CL) is the signature phospholipid of the mitochondrial inner membrane.
58 d cells, Mfrn2 is an iron transporter in the mitochondrial inner membrane.
59 -terminal end and predominantly localizes to mitochondrial inner membrane.
60 d complete translocation of Pink1 across the mitochondrial inner membrane.
61  enzyme, and sodium ion transport across the mitochondrial inner membrane.
62 AAC) is the most abundant transporter of the mitochondrial inner membrane.
63  the transport of small molecules across the mitochondrial inner membrane.
64 d GTPase Mgm1 is required to tether and fuse mitochondrial inner membranes.
65 n deafness/dystonia protein 1/translocase of mitochondrial inner membrane 8a (DDP1/TIMM8a) and loss o
66 n deafness/dystonia protein 1/translocase of mitochondrial inner membrane 8a (DDP1/TIMM8a).
67 ntified was MDL1, which like ATM1, encodes a mitochondrial inner membrane ABC transporter.
68 nonselective ion channels are present in the mitochondrial inner membrane, along with several known c
69 (ANT) family exchange ADP for ATP across the mitochondrial inner membrane, an activity that is essent
70 ) reduction of the proton conductance of the mitochondrial inner membrane and (ii) inhibition of the
71  that Mtg2p is peripherally localized to the mitochondrial inner membrane and associates with the 54S
72 tein homeostasis is subtly maintained on the mitochondrial inner membrane and can be derailed by the
73 nthase; PGPS4; EC 2.7.8.5) is located in the mitochondrial inner membrane and catalyzes the committed
74 g, prohibitin (Phb1p), were localized to the mitochondrial inner membrane and characterized as integr
75 tes the import of membrane proteins into the mitochondrial inner membrane and consists of two interme
76          We showed that it is located in the mitochondrial inner membrane and forms a approximately 3
77                 MICU1 is associated with the mitochondrial inner membrane and has two canonical EF ha
78 -ATP synthase forms dimeric complexes in the mitochondrial inner membrane and in a manner that is sup
79 : in the transport of ADP and ATP across the mitochondrial inner membrane and in the formation of the
80                Atp23p is associated with the mitochondrial inner membrane and is conserved from yeast
81 C-mitochondrial erythroid), localizes to the mitochondrial inner membrane and is expressed at particu
82 ast ATM1 gene whose product localizes to the mitochondrial inner membrane and is involved in iron hom
83 ncoupling proteins (UCPs) are located in the mitochondrial inner membrane and partially dissipate the
84                       UCP2 is located in the mitochondrial inner membrane and regulates production of
85 dentify KCNJ1(ROMK) in purified bovine heart mitochondrial inner membrane and ROMK mRNA was confirmed
86 release does not affect the integrity of the mitochondrial inner membrane and that, in the absence of
87               Cox15p is a constituent of the mitochondrial inner membrane and, because of its resista
88 ional Ang II type 2 receptors are present on mitochondrial inner membranes and are colocalized with e
89 nslocase (ANT) exchanges ADP/ATP through the mitochondrial inner membrane, and Ant2 is the predominan
90 synthesis are localized predominantly to the mitochondrial inner membrane, and CL is generally though
91 ion of proteins from the cytosol, across the mitochondrial inner membrane, and into the matrix.
92 nd core CI subunits and was localized in the mitochondrial inner membrane, and its depletion resulted
93 bTim62, a novel protein, is localized in the mitochondrial inner membrane, and its import into mitoch
94 2p) is synthesized on the matrix side of the mitochondrial inner membrane, and its N- and C-terminal
95                                          The mitochondrial inner membrane anion channel (IMAC) carrie
96 tential (AP) through a mechanism involving a mitochondrial inner membrane anion channel (IMAC) modula
97                       The model includes the mitochondrial inner membrane anion channel (IMAC), the c
98 d: PsiM oscillations involving ROS-sensitive mitochondrial inner membrane anion channels (IMAC), and
99 lear encoded gene (COX4) associated with the mitochondrial inner membrane are not present when PGS1 e
100 ltapsi(m)), increases in currents across the mitochondrial inner membrane as detected by direct patch
101 oosmotic treatment of isolated mitochondria, mitochondrial inner membrane-associated and soluble sMtC
102 rotein revealed that it is part of a soluble mitochondrial inner-membrane-associated, RNase-sensitive
103                                    Abcb10, a mitochondrial inner membrane ATP-binding cassette transp
104                           SLC25A24 encodes a mitochondrial inner membrane ATP-Mg/Pi carrier.
105 boxylate synthase (P5CS; EC not assigned), a mitochondrial inner membrane, ATP- and NADPH-dependent,
106 family AAA-Domain containing protein 3) is a mitochondrial inner membrane ATPase with unknown but vit
107            Loss of cps-6 delays breakdown of mitochondrial inner membranes, autophagosome enclosure o
108 ies observed are a consequence of defects in mitochondrial inner membrane biogenesis.
109 and directed to its final destination in the mitochondrial inner membrane by a bipartite, cleaved, am
110 the mitochondrion, Cox17 was tethered to the mitochondrial inner membrane by a fusion to the transmem
111                     Cox11 is tethered to the mitochondrial inner membrane by a single transmembrane h
112 ly event in import of preproteins across the mitochondrial inner membrane by the TIM23 complex.
113 re, we unravel the sequence of events in the mitochondrial inner membrane by which cytochrome b is he
114  - properties that differentiate it from the mitochondrial inner membrane carnitine/acylcarnitine exc
115        Our results support the idea that the mitochondrial inner membrane carries two independent imp
116 of permeability transition (PT) pores in the mitochondrial inner membrane causes the mitochondrial pe
117  previously showed that the conductance of a mitochondrial inner membrane channel, called MCC, was sp
118                   Atp10p was identified as a mitochondrial inner membrane component necessary for the
119  its association with pure lipid vesicles of mitochondrial inner membrane composition.
120 d molecular dynamics model of a patch of the mitochondrial inner membrane containing a transmembrane
121                                          The mitochondrial inner membrane contains a large protein co
122                                          The mitochondrial inner membrane contains two separate trans
123 tion of imported polytopic proteins into the mitochondrial inner membrane, contains the nonessential
124  which reduce the proton gradient across the mitochondrial inner membrane, create a futile cycle of n
125  that although mgm1 mutants display aberrant mitochondrial inner membrane cristae, mgm1 dnm1 double m
126 rge hetero-oligomeric protein complex in the mitochondrial inner membrane, crucial for the maintenanc
127 thane treatment induced hyperpolarization of mitochondrial inner membrane, decreased cellular ATP lev
128  activity causes complex I oxidative damage, mitochondrial inner membrane depolarization, and apoptot
129 ith the translocon on the matrix side of the mitochondrial inner membrane, drives translocation of pr
130 eta-cells associated with dissipation of the mitochondrial inner membrane electrochemical gradient, D
131 FS/DGS) and encodes proline oxidase (POX), a mitochondrial inner-membrane enzyme that catalyzes the f
132 xamine these processes in ABCB10 (ABC-me), a mitochondrial inner membrane erythroid transporter invol
133                     Structural damage to the mitochondrial inner membrane, evidenced by a decrease in
134 charomyces cerevisiae, Cmc2 localizes to the mitochondrial inner membrane facing the intermembrane sp
135 haromyces cerevisiae, Cmc1p localizes to the mitochondrial inner membrane facing the intermembrane sp
136 e protein is an extrinsic constituent of the mitochondrial inner membrane facing the matrix.
137 ine exposure, particularly the inhibition of mitochondrial inner membrane functions related to oxidat
138 f the solute carrier family localized in the mitochondrial inner membrane, functions as an essential
139 nner mitochondrial membrane and functions in mitochondrial inner membrane fusion and cristae maintena
140                                The mammalian mitochondrial inner membrane fusion protein OPA1 is cont
141 th components of phospholipid metabolism and mitochondrial inner membrane homeostasis.
142 , Phb1 and Phb2, which are key components of mitochondrial inner membrane homeostasis.
143 ABCB10 indicates that ABCB10 embedded in the mitochondrial inner membrane homodimerizes and homo-olig
144 from patients with type 1 diabetes exhibited mitochondrial inner-membrane hyperpolarization (MHP).
145 nd Mgr3 are known to associate with the Yme1 mitochondrial inner membrane i-AAA protease and to parti
146 ney mitochondria from the matrix side of the mitochondrial inner membrane: (i) Exogenous superoxide i
147 port of polytopic membrane proteins into the mitochondrial inner membrane (IM) is facilitated by Tim9
148 ix domain-containing protein 3 (ChChd3) is a mitochondrial inner membrane (IM) protein facing toward
149                                          The mitochondrial inner membrane (IM) serves as the site for
150 se upon oxidation of cardiolipin (CL) in the mitochondrial inner membrane (IM) under oxidative stress
151  fatty acid chains, is located mainly in the mitochondrial inner membrane (IM).
152 l division, morphological alterations of the mitochondrial inner-membrane (IMM) have not been clearly
153 he properties of Sco1p, a constituent of the mitochondrial inner membrane implicated in copper transf
154 tion of P4501A1 cDNA is localized inside the mitochondrial inner membrane in a membrane-extrinsic ori
155 e caused by decreased levels of Tim23 in the mitochondrial inner membrane in affected tissues.
156  orientation and are expressed highly in the mitochondrial inner membrane in several tissues includin
157           In the present study, we show that mitochondrial inner membranes in leg muscles of enduranc
158                          Ion channels on the mitochondrial inner membrane influence cell function in
159 els relevant to cytoprotection may be on the mitochondrial inner membrane instead of on the sarcolemm
160 rylation, reactive oxygen species (ROS), and mitochondrial inner membrane ion channels.
161    Facilitated pyruvate transport across the mitochondrial inner membrane is a critical step in carbo
162 ubiquinone oxidoreductase (complex I) of the mitochondrial inner membrane is a multi-subunit protein
163          Detachment of cytochrome c from the mitochondrial inner membrane is a necessary first step f
164         Translocation of proteins across the mitochondrial inner membrane is an essential process req
165                        The biogenesis of the mitochondrial inner membrane is dependent on two distinc
166 tion of proteins from the cytosol across the mitochondrial inner membrane is driven by action of the
167 tion of proteins from the cytosol across the mitochondrial inner membrane is driven by the action of
168                                          The mitochondrial inner membrane is impermeable to NAD (nico
169                                  Because the mitochondrial inner membrane is impermeable to pyridine
170             Protein translocation across the mitochondrial inner membrane is mediated by the TIM23 co
171 cate enzyme systems, the respirasome, in the mitochondrial inner membrane is reported in this issue o
172 ipin (CL), the characteristic lipid from the mitochondrial inner membrane, is another nonlamellar lip
173 , an ATP-dependent protease localized in the mitochondrial inner membrane, is required for the growth
174 Atm1p is an ABC transporter localized in the mitochondrial inner membrane; it functions to export an
175  identify dramatic decreases in the critical mitochondrial inner membrane lipid, cardiolipin, in diab
176 se (Ant) is the most abundant protein on the mitochondrial inner membrane (MIM) primarily involved in
177 surface membrane (sK(ATP)) and others in the mitochondrial inner membrane (mitoK(ATP)).
178 alcium-activated K+ channel was found on the mitochondrial inner membrane (mitoKCa) of guinea pig ven
179                       We observed changes in mitochondrial inner membrane morphology and a reduction
180 n the plasma membrane (Alr1 and Alr2) or the mitochondrial inner membrane (Mrs2 and Lpe10).
181                     Mammalian translocase of mitochondrial inner membrane (mTim44) was isolated durin
182  nucleotide-sensitive proton leak across the mitochondrial inner membrane of brown adipose tissue to
183 tein-1 (UCP1) is abundantly expressed in the mitochondrial inner membrane of brown adipose tissues an
184 lycerol are synthesized and localized in the mitochondrial inner membrane of eukaryotes.
185 py revealed both proteins to localize to the mitochondrial inner membrane of human T cells.
186 itochondrial uncoupling protein (UCP) in the mitochondrial inner membrane of mammalian brown adipose
187        We localized the Letm1 protein to the mitochondrial inner membrane of mammalian cells, where i
188 tions and the proton motive force across the mitochondrial inner membrane or prokaryotic cytoplasmic
189 veal new insight into the composition of the mitochondrial inner membrane organizing machinery.
190                                          The mitochondrial inner membrane organizing system (MINOS) i
191                                          The mitochondrial inner membrane organizing system (MINOS) i
192 amed the mitochondrial contact site complex, mitochondrial inner membrane organizing system, mitochon
193 , no apoptosis-associated alterations in the mitochondrial inner membrane, outer membrane, or matrix
194               Alternative oxidase (AOX) is a mitochondrial inner-membrane oxidase that accepts electr
195                         One such enzyme, the mitochondrial inner membrane peptidase, has two catalyti
196 chondrial permeability transition, inhibited mitochondrial inner membrane permeabilization and depola
197                         This was followed by mitochondrial inner membrane permeabilization, depolariz
198 mitochondrial ROS are critical in initiating mitochondrial inner membrane permeabilization, which lea
199 id PGE(2), which promotes protection against mitochondrial inner membrane perturbation and necrosis.
200                   MCU forms oligomers in the mitochondrial inner membrane, physically interacts with
201                  Coupling factor B (FB) is a mitochondrial inner membrane polypeptide that facilitate
202 ion, caspase-3 activation and dissipation of mitochondrial inner membrane potential (Delta(Psi)(m)).
203 sis of caspase activation and dissipation of mitochondrial inner membrane potential (DeltaPsi(m) loss
204                              Recovery of the mitochondrial inner membrane potential (DeltaPsi(m)) is
205 ndria, thus preventing the disruption of the mitochondrial inner membrane potential (DeltaPsi(m)), ca
206 sed to assess the effect of Mn on astrocytic mitochondrial inner membrane potential (DeltaPsi(m)).
207 ing rhodamine 123 (R123) was used to monitor mitochondrial inner membrane potential (deltapsi(m)).
208  Ca2+ overload can trigger depolarization of mitochondrial inner membrane potential (DeltaPsim) and c
209                      Oscillatory behavior of mitochondrial inner membrane potential (DeltaPsim) is co
210                         An indicator dye for mitochondrial inner membrane potential (DeltaPsim) revea
211  sinks, caused by the nonuniform collapse of mitochondrial inner membrane potential (DeltaPsim), cont
212 n pore (mPTP) opening and dissipation of the mitochondrial inner membrane potential (DeltaPsim).
213 els and rescues mitochondrial functionality (mitochondrial inner membrane potential and expression of
214 etal muscle fibers display localized loss of mitochondrial inner membrane potential in fiber segments
215 emarkably prevented the catastrophic loss of mitochondrial inner membrane potential induced by H2O2,
216 in mitochondria, both of which contribute to mitochondrial inner membrane potential loss, were dramat
217      The CN(-)-induced depolarization of the mitochondrial inner membrane potential preceded the incr
218 tochondrial-Nix cells, showed dissipation of mitochondrial inner membrane potential, Deltapsi(m), and
219  Treatment of sensitive cells caused loss of mitochondrial inner membrane potential, G(2)/M arrest, a
220 fects of MeHg treatment on oxidative injury, mitochondrial inner membrane potential, glutamine uptake
221  in [Ca(2+)]i and exaggerated instability in mitochondrial inner membrane potential.
222 menon through a large-scale fluctuation of a mitochondrial inner membrane potential.
223 d with an increase rather than a decrease in mitochondrial inner-membrane potential, as monitored by
224 features resembling the activity detected in mitochondrial inner membrane preparations.
225           We show here that Coq7p/Cat5p is a mitochondrial inner membrane protein directly involved i
226                                  Recently, a mitochondrial inner membrane protein EMRE was identified
227                                  Tim23p is a mitochondrial inner membrane protein essential for the i
228 cation and characterization of a novel human mitochondrial inner membrane protein homologous to the y
229             MCJ (also known as DnaJC15) is a mitochondrial inner membrane protein identified as an en
230  time the detergent-free reconstitution of a mitochondrial inner membrane protein into liposomes usin
231 Adenine nucleotide translocase 1 (Ant1) is a mitochondrial inner membrane protein involved in ATP/ADP
232 end strongly and directly interacts with the mitochondrial inner membrane protein mitofilin, which is
233                                   MPV17 is a mitochondrial inner membrane protein of unknown function
234                                The mammalian mitochondrial inner membrane protein Oxa1L is involved i
235                                In humans the mitochondrial inner membrane protein Oxa1L is involved i
236 l genome (rho(0) cell) or elimination of the mitochondrial inner membrane protein Oxa1p causes a dram
237                    Additionally, loss of the mitochondrial inner membrane protein Oxa1p generates a s
238                             DIC1 codes for a mitochondrial inner membrane protein that exchanges cyto
239               Uncoupling protein (UCP)2 is a mitochondrial inner membrane protein that is expressed i
240 ROS activates uncoupling protein-2 (UCP2), a mitochondrial inner membrane protein that negatively reg
241           The AEP3 gene encodes a peripheral mitochondrial inner membrane protein that stabilizes mit
242 f the ERBB2 receptor tyrosine kinase and the mitochondrial inner membrane protein UCP2 occurs frequen
243     Whether a given hydrophobic segment in a mitochondrial inner membrane protein will ultimately for
244                                  Atp25p is a mitochondrial inner membrane protein with a predicted ma
245      SCO1 was earlier reported to code for a mitochondrial inner membrane protein with an essential f
246 inding cassette (ABC) transporter ABCB8 is a mitochondrial inner membrane protein with an unknown fun
247 ing protein-1 (UCP1) is a brown fat-specific mitochondrial inner membrane protein with proton transpo
248 e forward reaction of NNT, a nuclear-encoded mitochondrial inner membrane protein, couples the genera
249           The data indicate that mTim44 is a mitochondrial inner membrane protein, one of the members
250 NOS1/MIO10 (C1orf151/YCL057C-A), a conserved mitochondrial inner membrane protein.
251              Uncoupling protein (UCP) 2 is a mitochondrial inner-membrane protein that mediates proto
252                                     BCS1L, a mitochondrial inner-membrane protein, is a chaperone nec
253                                              Mitochondrial inner membrane proteins appear to be not e
254                                      The two mitochondrial inner membrane proteins Cox11 and Sco1 are
255                                   Sorting of mitochondrial inner membrane proteins is a complex proce
256 ve roles for the translocation and import of mitochondrial inner membrane proteins, little is known a
257 or alternatively as a chaperone for selected mitochondrial inner membrane proteins.
258 A protease and are defective for turnover of mitochondrial inner membrane proteins.
259 translocase of inner membrane)22 pathway for mitochondrial inner membrane proteins.
260    Our results demonstrate the importance of mitochondrial inner-membrane proteostasis to both mitoch
261 ative phosphorylation (OXPHOS) to generate a mitochondrial inner membrane proton gradient (DeltaP).
262  change in glucose stimulation increased the mitochondrial inner membrane proton leak, and thus signi
263           The electrical gradient across the mitochondrial inner membrane (Psi(m)) is established by
264             In Saccharomyces cerevisiae, the mitochondrial inner membrane readily allows transport of
265            In this study, we report that the mitochondrial inner membrane rhomboid protease presenili
266 ndrial uncouplers transport protons from the mitochondrial inner membrane space into the mitochondria
267 n histone deacetylase HDAC7 localizes to the mitochondrial inner membrane space of prostate epithelia
268  transfer to the release of protons into the mitochondrial inner membrane space to promote ATP produc
269 drial MKP1 after irradiation occurred in the mitochondrial inner membrane space.
270  increases the levels of cardiolipin (CL), a mitochondrial inner membrane-specific lipid.
271                      Moreover, we found that mitochondrial inner membrane structure is dramatically d
272 omplex functions as a primary determinant of mitochondrial inner membrane structure.
273 e protein is functional when tethered to the mitochondrial inner membrane, suggesting its functional
274 t association of the BER activities with the mitochondrial inner membrane, suggesting that CSB may pa
275 pproximately equally toward each side of the mitochondrial inner membrane, suggesting that the Q-bind
276                      However, increasing the mitochondrial inner membrane surface comprises an altern
277  improvements in biochemical coupling at the mitochondrial inner membrane that enhance O2 efficiency.
278 the insertion of polytopic proteins into the mitochondrial inner membrane (the Tim54p-Tim22p complex)
279 roxide and release it into both sides of the mitochondrial inner membrane: the mitochondrial matrix a
280  cells by inducing proton leakage across the mitochondrial inner membrane, thereby uncoupling adenosi
281 ater molecules from the negative side of the mitochondrial inner membrane through a water channel int
282 locks the exchange of ADP and ATP across the mitochondrial inner membrane, thus inhibiting OXPHOS.
283 aracterized the essential translocase of the mitochondrial inner membrane (TIM) consisting of Tim17 i
284 PRAT proteins, such as the translocon of the mitochondrial inner membrane (TIM) proteins TIM22 and TI
285                              Translocases of mitochondrial inner membrane (TIMs) are multiprotein com
286        UCP1 catalyzes proton leak across the mitochondrial inner membrane to disengage substrate oxid
287                      The permeability of the mitochondrial inner membrane to HNO2, but not to NO2(-),
288 gnaling after the loss of the ability of the mitochondrial inner membrane to undergo fusion and lacti
289  of cytosolic/nuclear Fe-S proteins, but the mitochondrial inner membrane transporter Atm1 is importa
290 g aspartate/glutamate carriers (AGCs) of the mitochondrial inner membrane, using cross-linking and im
291                  Both complexes build in the mitochondrial inner membrane various supramolecular asse
292  in the translocation of proteins across the mitochondrial inner membrane via the TIM23-PAM complex a
293 ilarly, maintenance of a Deltapsi across the mitochondrial inner membrane was unaffected by cyanide b
294              Yeast Mdm38 is localized to the mitochondrial inner membrane where it was proposed to ac
295 a distinct cochaperone that localizes at the mitochondrial inner membrane, where it interacts prefere
296 ric structure predominantly localized in the mitochondrial inner membrane, where it is closely associ
297 on for nitric oxide (NO) within cells is the mitochondrial inner membrane, where NO binds to and inhi
298 on powered by the proton gradient across the mitochondrial inner membrane, which is generated by mito
299 nucleotide translocator (ANT) located in the mitochondrial inner membrane, which leads to a high cyto
300           The protein is integrated into the mitochondrial inner membrane with it's C-terminus expose

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