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1 brane a second time to finally reside in the intermembrane space.
2 ner membrane, and matrix or trap them in the intermembrane space.
3 rane protease following translocation to the intermembrane space.
4 ch protein substrates into the mitochondrial intermembrane space.
5 ated by a highly conserved linker facing the intermembrane space.
6 the mitochondrial inner membrane facing the intermembrane space.
7 is a peripheral protein of the IM facing the intermembrane space.
8 freely between the cytosol and mitochondrial intermembrane space.
9 ome c and smac/DIABLO from the mitochondrial intermembrane space.
10 tase, but is also found in the mitochondrial intermembrane space.
11 isoforms were predicted to be soluble in the intermembrane space.
12 ane, whereas the C-terminal domain faces the intermembrane space.
13 he small Tim proteins into the mitochondrial intermembrane space.
14 one the hydrophobic Tim23 across the aqueous intermembrane space.
15 ed in the cytoplasm and in the mitochondrial intermembrane space.
16 ugh partially localized to the mitochondrial intermembrane space.
17 tive protease localized in the mitochondrial intermembrane space.
18 ondrial matrix and the N-terminus facing the intermembrane space.
19 te-binding site is open to the mitochondrial intermembrane space.
20 DP to AMP by adenylate kinase located in the intermembrane space.
21 brane helices, shielding it from the aqueous intermembrane space.
22 the mitochondrial inner membrane facing the intermembrane space.
23 small molecules pass between the cytosol and intermembrane space.
24 e with the beta-folded P0-cyt located at the intermembrane space.
25 mu-calpain, are present in the mitochondrial intermembrane space.
26 e, suggesting its functional role within the intermembrane space.
27 ly associated with the inner membrane in the intermembrane space.
28 aggregation as the preprotein traverses the intermembrane space.
29 e inner mitochondrial membrane and faces the intermembrane space.
30 proapoptotic factors from the mitochondrial intermembrane space.
31 shown to be exposed within the mitochondrial intermembrane space.
32 ool of cytochrome c within the mitochondrial intermembrane space.
33 3p for assembly into a 70-kDa complex in the intermembrane space.
34 ane protein, whereas Mgm1p is located in the intermembrane space.
35 he nucleus and imported to the mitochondrial intermembrane space.
36 ed to be the copper donor to Sco1 within the intermembrane space.
37 and that the site in subunit MWFE is in the intermembrane space.
38 ed in both the cytosol and the mitochondrial intermembrane space.
39 nus facing the cytosol and C terminus in the intermembrane space.
40 polysialylation regulates cell adhesion and intermembrane space.
41 on site, is situated immediately next to the intermembrane space.
42 m the matrix but not O2- generation from the intermembrane space.
43 atrix and O2(-)(radical) production from the intermembrane space.
44 ath factors sequestered in the mitochondrial intermembrane space.
45 O2(-)(radical) into the matrix and into the intermembrane space.
46 l fraction was detected in the mitochondrial intermembrane space.
47 onverted to H2O2 by Mn-SOD) but not into the intermembrane space.
48 on of Cox17 is confined to the mitochondrial intermembrane space.
49 The protein has also been targeted to the intermembrane space.
50 nsition (MPT) and cytochrome c loss from the intermembrane space.
51 p) are translocated out of the matrix to the intermembrane space.
52 y of the ATP*MT complex in the mitochondrial intermembrane space.
53 the unfolded carrier proteins in the aqueous intermembrane space.
54 t inducing the loss of cytochrome c from the intermembrane space.
55 mitochondria with the C-terminus facing the intermembrane space.
56 membrane with it's C-terminus exposed to the intermembrane space.
57 phobic carrier substrates across the aqueous intermembrane space.
58 l of Lyn and Syk reside in the mitochondrial intermembrane space.
59 ion or by artificially targeting XIAP to the intermembrane space.
60 ysteine-rich proteins into the mitochondrial intermembrane space.
61 cysteine-rich proteins in the mitochondrial intermembrane space.
62 arding how lipids transit across the aqueous intermembrane space.
63 e of mitochondria with its C terminus in the intermembrane space.
64 dase (Ccp1) is targeted to the mitochondrial intermembrane space.
65 terminal end of the protein localized to the intermembrane space.
66 al quality control mechanisms present in the intermembrane space.
67 membrane with the C and N termini facing the intermembrane space.
68 which reduce i-AAA protease activity in the intermembrane space.
69 f intercellular junctions and the control of intermembrane spacing.
70 fluctuations are substantially modulated by intermembrane spacing.
71 and poly-A polymerase, in the mitochondrial intermembrane space, a location lacking resident RNAs.
72 expressed at low levels are degraded by the intermembrane space AAA (i-AAA) protease, suggesting mis
74 lipid transfer proteins in the mitochondrial intermembrane space, allowing formation of PE by Psd1 in
75 The presence of this peptidoglycan in the intermembrane space allows the refinement of a model for
76 localization of Prx1: a soluble form in the intermembrane space and a form in the matrix weakly asso
78 rosomes, Osm1 localizes to the mitochondrial intermembrane space and assembles with Erv1 in a complex
79 motif mitochondrial protein localized in the intermembrane space and associated with the inner membra
80 ed both by their presence in the constrained intermembrane space and by the 2D environment of membran
81 tosis-inducing factor from the mitochondrial intermembrane space and can cause the cleavage of full-l
82 ive literature on proteins released from the intermembrane space and consider genetic evidence for an
83 competitive decay pathways for O(2)*- in the intermembrane space and cytosol as well as the implicati
84 reases in ROS signaling in the mitochondrial intermembrane space and cytosol, and it abrogated hypoxi
85 matrix by superoxide that originates in the intermembrane space and diffuses across the inner membra
86 10 is a mitochondrial protein located in the intermembrane space and enriched at cristae junctions.
87 ein that exposes its carboxy-terminus to the intermembrane space and exists in several complexes of 6
88 approach to express SOD1 exclusively in the intermembrane space and found that mitochondrial SOD1 is
89 antimycin induced O2(-)(radical) toward the intermembrane space and inhibited H2O2 generation from t
90 isoenzyme is expressed in the mitochondrial intermembrane space and is mutated in reticular dysgenes
91 ation-prone proteins enter the mitochondrial intermembrane space and matrix after heat shock, and som
92 y the Mia40 oxidative-folding pathway in the intermembrane space and probably stabilize the membrane
93 alization of mu-calpain to the mitochondrial intermembrane space and provides new insight into the po
94 s have a specialized assembly pathway in the intermembrane space and that the local redox state of th
95 tosis-inducing factor from the mitochondrial intermembrane space and the cleavage of full-length Bid
97 ion of 0.94 A), whereas the loops facing the intermembrane space and the mitochondrial matrix are les
99 e-protein adsorption mechanisms that affects intermembrane spacing and adhesion and has direct implic
100 rom translocation from the cytosol (into the intermembrane space) and partly from caspase-mediated ac
101 e with the FAD binding domain exposed to the intermembrane space, and 3) the ability of recombinant C
102 n, a sulfhydryl oxidase of the mitochondrial intermembrane space, and a larger protein containing the
103 whose hydrophilic domains are located in the intermembrane space, and Cox20 remains associated with m
104 , localized to the cytosol and mitochondrial intermembrane space, and Grx2, localized primarily to th
105 ling molecules such as cytochrome c from the intermembrane space, and irreversible injury to the mito
106 d in the major compartments (outer membrane, intermembrane space, and the matrix) of the organelle is
109 ia demonstrated that DSP18 is located in the intermembrane space as a peripheral membrane protein of
110 ropose that a set of stacked rings spans the intermembrane space, as has been found for type III secr
111 ria accommodates the essential mitochondrial intermembrane space assembly (MIA) machinery that cataly
114 the intermembrane space by the mitochondrial intermembrane space assembly pathway that couples their
115 shown previously that Mgm1p localizes to the intermembrane space, associated with the inner membrane.
117 sulfhydryl oxidase within the mitochondrial intermembrane space but may communicate with the respira
119 d c1 are converted to their holoforms in the intermembrane space by attachment of heme to the cystein
120 complex facilitates translocation across the intermembrane space by binding to the membrane spanning
122 mbrane and is subsequently released into the intermembrane space by proteolytic removal of a hydropho
123 Mitochondrial proteins are targeted to the intermembrane space by the mitochondrial intermembrane s
124 g in both neuronal cytosol and mitochondrial intermembrane space, calpain I was found to be activated
125 vely reside in the cytosol and mitochondrial intermembrane space, can engage negatively charged bilay
126 chondrial inner membrane and consists of two intermembrane space chaperone complexes, the Tim9-Tim10
127 , to examine the in vitro degradation of two intermembrane space chaperone subunits, Tim9 and Tim10.
129 interact via their C-terminal domains in the intermembrane space, consistent with their in vivo topol
130 the small Tim proteins of the mitochondrial intermembrane space contain a consensus twin CX3C Zn2+-f
132 in pumping protons from the matrix into the intermembrane space contributing to the proton motive fo
133 in pumping protons from the matrix into the intermembrane space contributing to the proton motive fo
134 ined the crystal structure of the conserved, intermembrane space core portion of apo-hSCO1 to 2.8 A.
135 e oxidation takes place in the mitochondrial intermembrane space, delivering electrons to the respira
142 ter membrane with entry to and exit from the intermembrane space facilitated by ceramides in a dose-
143 sistant fold, associates non-integrally with intermembrane space-facing membranes and assembles in a
144 he central region of Tim23, which enters the intermembrane space first, may serve to nucleate the bin
146 -Tim13 complex, located in the mitochondrial intermembrane space, functions in the TIM22 import pathw
148 n protein translocation, indicating that the intermembrane space harbors diverse pathways for protein
151 peroxidase (CCP) is a 32.5 kDa mitochondrial intermembrane space heme peroxidase from Saccharomyces c
152 ane space via the redox-driven mitochondrial intermembrane space import and assembly (MIA) pathway.
155 , a dynamin-like GTPase of the mitochondrial intermembrane space important for maintaining cristae st
156 luorescent protein-based redox sensor to the intermembrane space (IMS) and matrix of yeast mitochondr
157 d by misfolded proteins in the mitochondrial intermembrane space (IMS) and mediated by the estrogen r
158 tochondrial membrane translocases facing the intermembrane space (IMS) and that this interaction prom
160 those that are targeted to the mitochondrial intermembrane space (IMS) do not require ATP or the inne
161 beta-barrel fold consisting of an N-terminal intermembrane space (IMS) domain and a C-terminal 16-str
162 ner membrane, the dynamic association of its intermembrane space (IMS) domain with the outer membrane
165 ast to matrix proteins, many proteins of the intermembrane space (IMS) lack presequences and are impo
166 fraction of active SOD1 localizes within the intermembrane space (IMS) of mitochondria together with
168 iated release of DDP/TIMM8a, a mitochondrial intermembrane space (IMS) protein , into the cytoplasm,
170 dent sulfhydryl oxidase in the mitochondrial intermembrane space (IMS) that functions in the import o
171 hatase that is targeted to the mitochondrial intermembrane space (IMS) where it interacts with the mi
172 ause Cu,Zn-SOD is found in the mitochondrial intermembrane space (IMS), we hypothesized that mitochon
173 ied to map the proteome of the mitochondrial intermembrane space (IMS), which can freely exchange sma
174 oid dehydrogenase type 2 (3betaHSD2) via its intermembrane space (IMS)-exposed charged unstructured l
175 transacylase tafazzin, which associates with intermembrane space (IMS)-facing membrane leaflets.
191 al matrix (Mito-RoGFP), or the mitochondrial intermembrane space (IMS-RoGFP), allowing assessment of
192 ls, allowing K(+) to enter the mitochondrial intermembrane space in a controlled regulated fashion.
193 3-nm particles could enter the mitochondrial intermembrane space in mitochondria of permeabilized cel
195 d through these pores from the mitochondrial intermembrane space into the cytoplasm where they initia
196 otic factors including cytochrome c from the intermembrane space into the cytoplasm, where they initi
197 orine causes translocation of DSP18 from the intermembrane space into the cytosol similar to other ap
198 otic protein released from the mitochondrial intermembrane space into the cytosol, promotes apoptosis
199 otein Omi is released from the mitochondrial intermembrane space into the cytosol, where it augments
201 P-independent chaperone of the mitochondrial intermembrane space, involved in transport of polytopic
202 with the carboxyl-terminal domain facing the intermembrane space is able to exert its normal function
203 lease of cytochrome c from the mitochondrial intermembrane space is critical to apoptosis induced by
204 sults suggest that SOD1 in the mitochondrial intermembrane space is fundamental for motor axon mainte
207 denine nucleotide interconversion within the intermembrane space, is markedly induced during adipocyt
208 protons from the mitochondrial matrix to the intermembrane space, it builds up an electrochemical pot
210 ) forms the membrane anchor, which binds the intermembrane space-localized alpha-subunit (Psd1alpha).
211 s the respiratory chain to the mitochondrial intermembrane space-localized, ubiquitous, and ancient S
212 inner membrane) complex of the mitochondrial intermembrane space mediates the import of the carrier p
213 mine-conjugated dextran in the mitochondrial intermembrane space of digitonin-permeabilized hepatocyt
217 containing metalloprotein is located in the intermembrane space of mitochondria and released into bl
218 tosis, cytochrome c (cyt c) is released from intermembrane space of mitochondria into the cytosol whe
228 h a chaperone had not been identified in the intermembrane space of plastids and we propose that Tic2
230 osome in which m-IL-1beta resides within the intermembrane space of the double-membrane structure.
231 c stimuli, cytochrome c is released from the intermembrane space of the mitochondria into the cytopla
234 ther cellular compartments especially in the intermembrane space of the mitochondrial to avoid irreve
236 as with planar bilayers demonstrated average intermembrane spacing of 12.8 nm with CD48-WT, 14.7 nm w
237 is unclear whether loss of the enzyme in the intermembrane space or cytosol is important in this resp
239 estined for the outer or inner membrane, the intermembrane space, or the matrix, proteins begin the i
240 study was used to reveal the relative matrix/intermembrane space/outer membrane (85:6:9) distribution
241 her complex I subunits as a substrate of the intermembrane space oxidoreductase CHCHD4 (also known as
242 The small Tim proteins in the mitochondrial intermembrane space participate in the TIM22 import path
244 eric Tim9-Tim10 complex of the mitochondrial intermembrane space plays an important role during impor
245 locase complex, located in the mitochondrial intermembrane space, plays an essential chaperone-like r
246 sible for the transfer of disulfide bonds to intermembrane space precursor proteins, causing their ox
247 ndria, suggesting that OPA1 is cleaved by an intermembrane space protease which is regulated by activ
249 x activation and pro-apoptotic mitochondrial intermembrane space protein release, which are required
250 ond is the CHCHD3 homologue, CHCH-3, a small intermembrane space protein that may act as a chaperone.
251 is a developmentally regulated mitochondrial intermembrane space protein that undergoes processive cl
252 thermore, the protease Prd1, misannotated as intermembrane space protein, could be re-assigned and ch
254 and D sphingosine potentiate the release of intermembrane space proteins by long-chain ceramide and
255 ismutase (Sod1) requires a growing number of intermembrane space proteins containing a twin Cx(9)C mo
256 ge assembly defect and emphasize the role of intermembrane space proteins for the efficient assembly
257 ability of ceramide to induce the release of intermembrane space proteins from mitochondria in vitro.
258 , the Mia40/Erv1 pathway for import of small intermembrane space proteins participates in CCS mitocho
260 results show that ceramides allow release of intermembrane space proteins with a molecular weight cut
261 membrane permeabilization and the release of intermembrane space proteins, such as cytochrome c, are
262 haracterized by the release of mitochondrial intermembrane space proteins, such as cytochrome c.
263 quired for the cleavage of two mitochondrial intermembrane space proteins, suggesting that rhomboid p
264 n the permeability transition and release of intermembrane space proteins, the mitochondrial Ca(2+)-i
265 e, we investigated the role of the conserved intermembrane space proteins, Ups1p and Ups2p, and an in
266 In this study, we report that two homologous intermembrane space proteins, Ups1p and Ups2p, control c
268 0-HCO-THF to 10-HCO-DHF in the mitochondrial intermembrane space represents a possible folate metabol
269 e of high levels of CCS in the mitochondrial intermembrane space results in enhanced mitochondrial ac
271 d plants, Toc75 N terminus is located on the intermembrane space side, not the cytosolic side, of the
272 eing in the mitochondrial outer membrane and intermembrane space, SOD1 is also localized in the mitoc
273 PNPase localization to the mitochondrial intermembrane space suggests a unique role distinct from
274 o replenish protons from the matrix into the intermembrane space, sustaining mitochondrial membrane p
275 ent of the protein has a function within the intermembrane space that is independent of copper ion bi
276 lectron acceptor couple in the mitochondrial intermembrane space that seems to function in both aerob
277 in yet another subcellular compartment: the intermembrane space that separates forespores from mothe
278 s are by nature transient and located in the intermembrane space, this determination is generally a v
279 AC) bound to the Tim9p-Tim10p complex in the intermembrane space; this productive intermediate can be
281 ther apoptotic factors are released from the intermembrane space through these pores, initiating down
282 e recruitment of molecular chaperones in the intermembrane space to facilitate membrane transport.
283 8a partners with TIMM13 in the mitochondrial intermembrane space to form a 70 kDa complex and facilit
286 to acidification, whereas the mitochondrial intermembrane space (trans) side barely responded to pH
287 Two mitochondrial proteins located in the intermembrane space, Ups1p and Ups2p, have been shown to
288 cation for proteins that are targeted to the intermembrane space via the redox-driven mitochondrial i
289 the translocase of the outer membrane to the intermembrane space, where divergent pathways sort them
290 otein Opa1 is localized to the mitochondrial intermembrane space, where it facilitates fusion between
291 Mgm1/OPA1 is localized to the mitochondrial intermembrane space, where it is tightly bound to the ou
292 argeted to mitochondria and localizes in the intermembrane space, where it participates in an approxi
293 ) promotes transport of the precursor to the intermembrane space, whereas the sorting and assembly ma
294 ifunctional hemoprotein in the mitochondrial intermembrane space whereby its participation in electro
295 amily of yeast proteins in the mitochondrial intermembrane space which mediate the import and inserti
296 III is also released into the mitochondrial intermembrane space, which contains a recently identifie
297 f an Mg2+-dependent nuclease activity in the intermembrane space, which is responsible for the former
298 G activity exclusively to the mitochondrial intermembrane space with no activity associated with eit
299 cal hexameric complexes in the mitochondrial intermembrane space with phosphotransfer activity using
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