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1 on of the C-terminal extrinsic domain of the iron sulfur protein.
2 reaction complex between quinol and oxidized iron sulfur protein.
3 o the pKa values of cytochrome bH and Rieske iron sulfur protein.
4 reduction potential of the active site in an iron-sulfur protein.
5 anous helix close to the hinge region of the iron-sulfur protein.
6 ty to induce mobile or fixed conformation of iron-sulfur protein.
7       arrB is predicted to encode a 25.7-kDa iron-sulfur protein.
8  complex, where it interacts with the Rieske iron-sulfur protein.
9  upon the rate of ubiquinol oxidation by the iron-sulfur protein.
10  lipid phase and the extrinsic domain of the iron-sulfur protein.
11 ritical for maintaining the stability of the iron-sulfur protein.
12 me c1, and an amino-terminal fragment of the iron-sulfur protein.
13 t Ala-185 of cytochrome b interacts with the iron-sulfur protein.
14 ich is a pyridoxamine 5'-phosphate dependent iron-sulfur protein.
15 gene cluster including an alternative Rieske iron-sulfur protein.
16 hanges were typical of those in other 4Fe-4S iron sulfur proteins.
17 reminiscent of those found in molybdenum and iron sulfur proteins.
18 ers, and participates in the biosynthesis of iron-sulfur proteins.
19 3, 4) clusters that form the active sites of iron-sulfur proteins.
20 nds in modulating the reduction potential of iron-sulfur proteins.
21 a sequence motif similar to a motif found in iron-sulfur proteins.
22 ation states of the metal centers in several iron-sulfur proteins.
23 n Arabidopsis, required for full activity of iron-sulfur proteins.
24  a thioredoxin-like fold that is novel among iron-sulfur proteins.
25 acellular concentration of iron by attacking iron-sulfur proteins.
26 e domain capable of binding two tetranuclear iron-sulfur proteins.
27 evels of the NADH dehydrogenase (ubiquinone) iron-sulfur protein 3, NADH dehydrogenase (ubiquinone) 1
28 hich encodes NADH dehydrogenase (ubiquinone) iron-sulfur protein 4, results in compromised activity o
29  has a UV-visible spectrum characteristic of iron-sulfur proteins (410 nm (11.9 mM(-1) cm(-1)) and 45
30 e also decreased the levels of the corrinoid iron-sulfur protein (60%) and methyltransferase (70%).
31 ing anaerobic growth and inactivation of the iron-sulfur proteins, aconitase and fumarase, by accumul
32        These phenotypes include decreases in iron-sulfur protein activities coordinated with increase
33 for the involvement of yggX in protection of iron-sulfur proteins against oxidative damage.
34 are any sequence similarity with the classic iron-sulfur proteins, although four cysteines (which are
35 ion of sirC and sirD, encoding a periplasmic iron sulfur protein and an integral membrane hydroquinon
36 none, or class I inhibitors, and the reduced iron sulfur protein and formation of a reaction complex
37 ne 5'-phosphosulfate reductase (MtAPR) is an iron-sulfur protein and a validated target to develop ne
38 sine-5'-phosphosulfate (APS) reductase is an iron-sulfur protein and a validated target to develop ne
39 gent electron transfer from ubiquinol to the iron-sulfur protein and cytochrome b(L) within the cytoc
40 quinol must simultaneously interact with the iron-sulfur protein and cytochrome b.
41 s bifurcated electron transfer to the Rieske iron-sulfur protein and cytochrome b.
42 idase site, but that interaction between the iron-sulfur protein and cytochrome c1 is partially impai
43 e the high potential centers of complex III (iron-sulfur protein and cytochromes c + c1), NADH or suc
44 llin with H-bonds between H161 of the Rieske iron-sulfur protein and E272 of the cyt b protein.
45 e oxidation reflected the pK on the oxidized iron-sulfur protein and requirement for the deprotonated
46 the loss of F(X), F(B), and F(A), the Rieske iron-sulfur protein and the non-heme iron in photosystem
47 f iron dealt with here include biogenesis of iron-sulfur proteins and chaperones that deliver iron co
48                                        (iii) Iron-sulfur proteins and charge clusters.
49  properties of the Fe(III)-thiolate bonds of iron-sulfur proteins and corroborating the important rol
50 fs1p in assembly/maturation of mitochondrial iron-sulfur proteins and that one or more of the target
51  relevance, as many pathogens sense NO using iron-sulfur proteins and will be exposed to NO in an aer
52 ng terminal cytochrome oxidases, inactivates iron/sulfur proteins, and promotes entry into latency.
53 ype yeast, even though normal amounts of the iron-sulfur protein are present as judged by Western blo
54  of the protein to the redox potential in an iron-sulfur protein are studied via energy minimization,
55  sequences of the S. pombe and S. cerevisiae iron-sulfur proteins are 50% identical, with the highest
56                                              Iron-sulfur proteins are among the primary targets of ni
57                                              Iron-sulfur proteins are among the sensitive targets of
58                                              Iron-sulfur proteins are found in all life forms.
59 s a high degree of similarity to a number of iron-sulfur proteins as well as to the beta subunit of g
60  electron transfer chain, with the cytosolic iron-sulfur protein assembly (CIA) machinery required fo
61 O1), an essential component of the cytosolic iron-sulfur protein assembly (CIA) machinery, is crucial
62 morsin complex, a component of the cytosolic iron-sulfur protein assembly (CIA) machinery.
63                     The T. hominis cytosolic iron-sulfur protein assembly (CIA) pathway includes the
64                            The final step of iron-sulfur protein assembly involves transfer of an iro
65                             In the cytosolic iron-sulfur protein assembly machinery, two human key pr
66 , is an essential component of the cytosolic iron-sulfur protein assembly pathway in yeast.
67 c protein that plays a role in the cytosolic iron-sulfur protein assembly pathway.
68 9 can simultaneously bind probable cytosolic iron-sulfur protein assembly protein CIAO1 and Fe-S prot
69 rocesses such as transcription, translation, iron-sulfur protein assembly, nucleotide metabolism, LPS
70 paramagnetic resonance (EPR) spectrum of the iron sulfur protein, associated with its interactions wi
71  reduction of cytochrome c(1) and the Rieske iron-sulfur protein at center P.
72 evealed by the structures, a movement of the iron sulfur protein between two separate reaction domain
73 ochondrial components required for cytosolic iron sulfur protein biogenesis.
74 r a human homologue of IscA, named IscA1, in iron-sulfur protein biogenesis.
75 iation with genes proposed to be involved in iron-sulfur protein biosynthesis.
76 amma display folds related to high potential iron-sulfur proteins but differ substantially from each
77 n of the complex, including oxidation of the iron sulfur protein by cytochrome c(1) and the reactions
78 uced in SMP via cytochrome c, and the Rieske iron-sulfur protein by ascorbate and faster by ascorbate
79 r-185 in the Saccharomyces cerevisiae Rieske iron-sulfur protein by site-directed mutagenesis of the
80 cum catalyzes the methylation of a corrinoid/iron-sulfur protein (C/Fe-SP) by the N5 methyl group of
81    These results establish that mature-sized iron-sulfur protein can be formed by single-step process
82 nt of movement of the head domain of reduced iron-sulfur protein, caused by disruption of electron tr
83 tween methyltransferase (MeTr) and corrinoid iron-sulfur protein (CFeSP) are required for the transfe
84                                The corrinoid iron-sulfur protein (CFeSP) from Clostridium thermoaceti
85 etrahydrofolate (CH(3)-H(4)folate) corrinoid-iron-sulfur protein (CFeSP) methyltransferase (MeTr) cat
86 ve studied the axial ligation of a corrinoid iron-sulfur protein (CFeSP) that plays a key role in ene
87 t(III) species on one protein (the corrinoid iron-sulfur protein (CFeSP)) to a nickel iron-sulfur clu
88 te) to the cob(I)amide center of a corrinoid/iron-sulfur protein (CFeSP), forming H4folate and methyl
89 4folate) to the cobalt center of a corrinoid/iron-sulfur protein (CFeSP), forming methylcob(III)amide
90 sis from CoA, CO, and a methylated corrinoid iron-sulfur protein (CFeSP).
91  from the CH(3)-Co(3+) site in the corrinoid iron-sulfur protein (CFeSP).
92                      [FeFe]-hydrogenases are iron-sulfur proteins characterized by a complex active s
93 CoA, and a methyl group bound to a corrinoid-iron sulfur protein (CoFeSP).
94 nd a methyl group donated from the corrinoid-iron-sulfur protein (CoFeSP).
95 transferred onto the enzyme from a corrinoid-iron-sulfur protein (CoFeSP).
96                                The corrinoid-iron/sulfur protein (CoFeSP) operates within the reducti
97 e first comprehensive characterization of an iron-sulfur protein complex that regulates Spo0A approxi
98 haves similarly to stigmatellin, inducing an iron-sulfur protein conformational arrest.
99   Western blotting analyses reveal a reduced iron-sulfur protein content in Y268S bc(1) suggestive of
100  cluster affects molecular properties of the iron-sulfur protein, crystal structures of reduced C73S
101   IR and visible redox difference spectra of iron-sulfur protein/cytochrome c(1), heme b(H), and heme
102 (class II), and a distal domain close to the iron sulfur protein docking interface, where stigmatelli
103                                              Iron-sulfur proteins exhibited loss of iron cofactors, y
104 sulate the semiquinone from oxidation by the iron-sulfur protein, explaining the efficiency of bifurc
105                     The motion of the Rieske iron-sulfur protein extrinsic domain, essential for elec
106            Miner2 is a member of a new CDGSH iron-sulfur protein family that also includes two mitoch
107         Electron transfer between the Rieske iron-sulfur protein (Fe(2)S(2)) and cytochrome c(1) was
108 a NO-responsive Wbl protein (actinobacterial iron-sulfur proteins first identified in the 1970s).
109 D, a member of the WhiB-like (Wbl) family of iron-sulfur proteins found exclusively within the actino
110                          The purified Rieske iron-sulfur protein fragment was characterized by: (i) a
111 e occupancies of different positions for the iron sulfur protein from the crystallographic electron d
112  raises the midpoint potential of the Rieske iron-sulfur protein from 285 to 385 mV, and shifts the g
113 act efficiently in vitro with high potential iron-sulfur protein from A. vinosum (Em +350 mV).
114 x and facilitate dissociation of the reduced iron-sulfur protein from Pdr, and (iii) transfer of an e
115  protein by site-directed mutagenesis of the iron-sulfur protein gene to examine how these hydrogen b
116 d by site-directed mutagenesis of the cloned iron-sulfur protein gene, so that the recognition sites
117  to transform yeast cells (JPJ1) lacking the iron-sulfur protein gene.
118 us experiments using deletion mutants of the iron-sulfur protein had indicated that amino acid residu
119                                   A range of iron-sulfur proteins has been found to accommodate these
120 , -Ser) in Chromatium vinosum high-potential iron sulfur protein have been examined with the aim of u
121 reactions that contribute to movement of the iron sulfur protein have been measured and shown to be l
122  major effect on the interaction between the iron-sulfur protein headgroup and the quinol oxidation s
123 ene, pioC, encodes a putative high potential iron sulfur protein (HiPIP) with a twin-arginine translo
124 -sulfur cluster motif in both high potential iron-sulfur protein (HiPIP) and ferredoxin (Fd) active s
125 n contrast, the C. purpuratum high-potential iron-sulfur protein (HiPIP) differs from those isolated
126  demonstrate in vivo that the high potential iron-sulfur protein (HiPIP) from Allochromatium vinosum
127  The crystal structure of the high-potential iron-sulfur protein (HiPIP) isolated from Chromatium pur
128 trate, generating an oxidized high potential iron-sulfur protein (HiPIP)-like intermediate.
129 oxin (Fd), and to new data on high-potential iron-sulfur protein (HiPIP).
130 trophic growth, including two high-potential iron-sulfur proteins (HiPIPs) (PioC and Rpal_4085) and a
131 eins, the rubredoxins and the high-potential iron-sulfur proteins (HiPIPs), no structural explanation
132 ependent formate dehydrogenase-H), and three iron-sulfur proteins: HycB, HycF, and HycG.
133                                        Three iron-sulfur proteins--HydE, HydF, and HydG--play a key r
134 and bc1 complexes indicate that intermediate iron-sulfur protein (i-ISP) has full activity when compa
135 he parameters determining the binding of the iron sulfur protein in different configurations.
136 terference of the complex III subunit Rieske iron sulfur protein in the cytochrome b-null cells and t
137 t Ser-175 of cytochrome b is shielded by the iron-sulfur protein in the bc1 complex.
138                           Import of S. pombe iron-sulfur protein in which the putative MIP or MPP rec
139 g high concentrations of metal chelators and iron-sulfur protein in which the recognition site for th
140                                              Iron-sulfur protein in which the recognition site for th
141                     Possible roles for these iron-sulfur proteins in electron transport and light har
142 x exists as a dimer with intertwining Rieske iron-sulfur proteins in solution, four Rhodobacter sphae
143 , three pathways exist for the maturation of iron-sulfur proteins in the cytosol, plastids, and mitoc
144 hese strains accumulated intermediate length iron-sulfur proteins in vivo.
145   NEET proteins belong to a unique family of iron-sulfur proteins in which the 2Fe-2S cluster is coor
146 mitochondrial cytochrome bc1 complex we used iron-sulfur proteins in which the presequences had been
147 minished activity of cytosolic aconitase, an iron-sulfur protein, in liver extracts.
148 diminished activity of various mitochondrial iron-sulfur proteins including aconitase.
149 e deletion strain complemented with S. pombe iron-sulfur protein indicate that the S. pombe protein i
150   The crystal structure of the bovine Rieske iron-sulfur protein indicates a sulfur atom (S-1) of the
151 at the same conserved docking surface on the iron sulfur protein interacts with cytochrome c(1) and w
152 d by site-directed mutagenesis and import of iron-sulfur protein into mitochondria from yeast mutants
153  are critical for the proper assembly of the iron-sulfur protein into the bc1 complex.
154  is necessary for import and assembly of the iron-sulfur protein into the cytochrome bc1 complex, we
155 roline together with EDTA inhibits import of iron-sulfur protein into the matrix space of mitochondri
156  EDTA and o-phenanthroline inhibit import of iron-sulfur protein into the matrix.
157 correlation between the import of the Rieske iron-sulfur protein into the mitochondrial matrix and pr
158    These results indicate that import of the iron-sulfur protein into the mitochondrial matrix is ind
159 The protein is homologous to B(12)-dependent iron-sulfur proteins involved in halorespiration.
160 f this complex are the flavoprotein (Fp) and iron-sulfur protein (Ip) of the dehydrogenase, and two i
161                    The membrane-bound Rieske iron-sulfur protein is an essential component of the cyt
162  At pH 8.8, where the redox potential of the iron-sulfur protein is approximately 200 mV and in a bc(
163 otein in a single step, and the mature-sized iron-sulfur protein is correctly targeted to the outer s
164 yeast strain JPJ1, in which the gene for the iron-sulfur protein is deleted, was transformed with the
165  strain in which the endogenous gene for the iron-sulfur protein is deleted.
166           The [2Fe-2S] cluster of the Rieske iron-sulfur protein is held between two loops of the pro
167              We suggest that the trypanosome iron-sulfur protein is imported along a "conservative so
168                                         When iron-sulfur protein is imported into mitochondria in vit
169 ate that one step processing of the S. pombe iron-sulfur protein is independent of those sites and of
170 ng that movement of the tether region of the iron-sulfur protein is necessary for maximum rates of en
171 egrees for Chromatium vinosum high-potential iron-sulfur protein is predicted to be in good agreement
172 ce of this recognition sequence the S. pombe iron-sulfur protein is processed only once during import
173                            However, when the iron-sulfur protein is removed from the S175C-substitute
174 onfirming that oxidation of ubiquinol by the iron-sulfur protein is the rate-limiting partial reactio
175                            The biogenesis of iron-sulfur proteins is a complex process that has becom
176  after import in vitro and of the endogenous iron-sulfur protein isolated from mitochondrial membrane
177 dioxygenase from Pseudomonas putida F1 is an iron-sulfur protein (ISP(TOL)) that requires mononuclear
178                   It was postulated that the iron-sulfur protein (ISP) accepts the first electron fro
179  in the interface between the head domain of iron-sulfur protein (ISP) and cytochrome b and the other
180 KCN to reduce the high potential components (iron-sulfur protein (ISP) and cytochrome c(1)) of comple
181  vitro between soluble domains of the Rieske iron-sulfur protein (ISP) and cytochrome f subunits of t
182 ion of the rate of Q(o)H(2) oxidation by the iron-sulfur protein (ISP) as well as the donation of ele
183 ectron transfer from ubiquinol to the Rieske iron-sulfur protein (ISP) at the Q(o)-site.
184 l movement of the soluble head of the Rieske iron-sulfur protein (ISP) between reaction domains in cy
185            Long-range movement of the Rieske iron-sulfur protein (ISP) between the cytochrome (cyt) b
186 rome bc(1) complex, the swivel motion of the iron-sulfur protein (ISP) between two redox sites consti
187 etween quinol bound at the Q(o) site and the iron-sulfur protein (ISP) docked at an interface on cyto
188 d the cyt bc1 complexes incorporate 'Rieske' iron-sulfur protein (ISP) domain movements to gate elect
189 iality of head domain movement of the Rieske iron-sulfur protein (ISP) during bc(1) catalysis, Rhodob
190 vided evidence that a movement of the Rieske iron-sulfur protein (ISP) extrinsic domain is essential
191 an electron from the [2Fe-2S] cluster of the iron-sulfur protein (ISP) extrinsic domain to the cytoch
192 (1) Q(o) site inhibitor that immobilizes the iron-sulfur protein (ISP) in the b conformation.
193 nted cyt b(6)f complex shows that the Rieske iron-sulfur protein (ISP) is in distinct orientations, d
194 he extramembrane (head) domain of the Rieske iron-sulfur protein (ISP) is involved in electron transf
195  that a large amplitude motion of the Rieske iron-sulfur protein (ISP) is required to mediate electro
196 he extramembrane domain (head) of the Rieske iron-sulfur protein (ISP) may play an important role in
197 at the soluble domain of the [2Fe-2S] Rieske iron-sulfur protein (ISP) must rotate by ca. 60 degrees
198             Sequence alignment of the Rieske iron-sulfur protein (ISP) of cytochrome bc(1) complex fr
199 he redox-linked protonation chemistry of the iron-sulfur protein (ISP) of the cytochrome bc(1) comple
200                                In the Rieske iron-sulfur protein (ISP) of the ubiquinol:cytochrome c(
201 e inhibitor, inhibits electron transfer from iron-sulfur protein (ISP) to cytochrome c1 in the bc1 co
202 x suggests that the extra membrane domain of iron-sulfur protein (ISP) undergoes substantial movement
203  mobility of the extramembrane domain of the iron-sulfur protein (ISP): Binding of 5-undecyl-6-hydrox
204 s a large scale movement of a head domain of iron-sulfur protein (ISP-HD), which functionally connect
205 on with the RBD1 gene, which encodes a small iron-sulfur protein known as a rubredoxin.
206 y-deficient yeast strain due to formation of iron-sulfur protein lacking the iron-sulfur cluster.
207  in mutants of Synechococcus sp. PCC 7002 at iron sulfur protein-Leu-111 near the cluster.
208              Human mitoNEET is a homodimeric iron-sulfur protein located in the outer mitochondrial m
209 vity when compared with that of mature sized iron-sulfur protein (m-ISP).
210         The methyltetrahydrofolate:corrinoid/iron-sulfur protein methyltransferase (MeTr) from Clostr
211         The methyltetrahydrofolate:corrinoid/iron-sulfur protein methyltransferase (MeTr) from Clostr
212         The methyltetrahydrofolate:corrinoid/iron-sulfur protein methyltransferase (MeTr) from Clostr
213                      Thus, expression of the iron-sulfur protein mitochondrial aconitase and function
214 ructures show that all interactions with the iron sulfur protein must occur at the distal position.
215  was also not greatly affected by the Rieske iron-sulfur protein mutations Y156W, S154A, or S154A/Y15
216 me F(420)-reducing hydrogenase (FrcA) and an iron sulfur protein (MvrD).
217 y has been overlooked as a tool for studying iron-sulfur protein nitrosylation despite the fact that
218                               High potential iron-sulfur protein not only acts as direct electron don
219 p-phenylenediamine via cytochrome c1 and the iron-sulfur protein of complex III (ISP).
220 200 mV and in a bc(1) complex with a mutated iron-sulfur protein of equally low redox potential, the
221 h a small interfering RNA against the Rieske iron-sulfur protein of mitochondrial complex III did not
222  post-translational processing of the Rieske iron-sulfur protein of Saccharomyces cerevisiae and its
223 ying the Rip1 gene, which encodes the Rieske iron-sulfur protein of Schizosaccharomyces pombe, has be
224 -terminal polypeptide fragment of the Rieske iron-sulfur protein of the cytochrome b6f complex from s
225                                          The iron-sulfur protein of the cytochrome bc1 complex is one
226 alanine residues in the tether region of the iron-sulfur protein of the yeast cytochrome bc(1) comple
227                                          The iron-sulfur proteins of the cytochrome bc1 complexes of
228 d be the result of an altered binding of the iron-sulfur protein on the complex.
229  of decreasing the midpoint potential of the iron-sulfur protein on the rates of cytochrome b reducti
230 he excess purified head domain of the Rieske iron-sulfur protein partially restored the proton-pumpin
231 s complex and (ii) acetylation of the Rieske iron-sulfur protein (PetC) at the N terminus, a post-tra
232                                              Iron-sulfur proteins play an essential role in a variety
233                                              Iron-sulfur proteins play an essential role in many biol
234                                              Iron-sulfur proteins play indispensable roles in a broad
235                                  When Rieske iron-sulfur protein precursor is used as substrate for r
236 ation G167E could hinder the movement of the iron-sulfur protein, probably by distorting the structur
237     Two of these are located on the "Rieske" iron-sulfur protein protein (ISP) while the third is fou
238 separate, one-electron-transfer steps to the iron-sulfur protein putidaredoxin (Pdx).
239 these requirements with regard to the Rieske iron-sulfur protein QcrA of Bacillus subtilis.
240 omplex lacking the head domain of the Rieske iron-sulfur protein, removed by thermolysin digestion, i
241                          The movement of the iron sulfur protein represents a novel mechanism of elec
242            We functionally characterized the iron-sulfur protein required for NADH dehydrogenase (IND
243  S. cerevisiae deletion strain, the S. pombe iron-sulfur protein restores 25-30% of the ubiquinol-cyt
244 generation was inhibited by knockdown of the iron-sulfur protein, Rieske, in complex III.
245  or transfecting siRNA for the mitochondrial iron-sulfur protein, Rieske.
246 hen engineered into the budding yeast Rieske iron-sulfur protein Rip1, revealing remarkable conservat
247 ate assembly intermediate lacking the Rieske iron-sulfur protein Rip1.
248 in mouse lung fibroblasts lacking the Rieske iron-sulfur protein (RISP knockout [KO]cells), one of th
249  ablation of the genes coding for the Rieske iron-sulfur protein (RISP) and COX10, respectively.
250 -mediated conditional deletion of the Rieske iron-sulfur protein (RISP) of Complex III was generated.
251 a heart- and muscle-specific isoform; Reiske iron-sulfur protein (RISP), a ubiquitously expressed ele
252  the iron-sulfur center FeS4 in the simplest iron-sulfur protein rubredoxin as a model system to demo
253 stigated the unfolding pathways of the small iron-sulfur protein rubredoxin from Pyrococcus furiosus
254 n structure, solvation, and energies for the iron-sulfur protein rubredoxin from the hyperthermophili
255 e, the reversible unfolding-refolding of the iron-sulfur protein rubredoxin was observed directly usi
256 of iron from the active site of the simplest iron-sulfur protein, rubredoxin, at the single molecule
257               In other reactions of SAM with iron-sulfur proteins, SAM is irreversibly consumed to ge
258              We explain this effect by b566, iron-sulfur protein short-circuiting under these conditi
259  A large scale domain movement involving the iron-sulfur protein subunit is required for electron tra
260 bditis elegans isp-1 gene encodes the Rieske iron-sulfur protein subunit of cytochrome c oxidoreducta
261                         Import of the Rieske iron-sulfur protein subunit of the cytochrome c reductas
262                                 The "Rieske" iron-sulfur protein subunit shows significant conformati
263 e orientation of the g-tensors of the Rieske iron-sulfur protein subunit was determined in a single c
264 tional switch of the extrinsic domain of the iron-sulfur protein subunit.
265 eduction in the hydrophilic flavoprotein and iron-sulfur protein subunits.
266 ding of putidaredoxin (C and L helices), the iron-sulfur protein that acts as the effector and reduct
267 e iron metabolism, partly because IRP1 is an iron-sulfur protein that functions mainly as a cytosolic
268 ma and delta subunits constitute a corrinoid iron-sulfur protein that is involved in the transmethyla
269                                  HcpR2 is an iron-sulfur protein that reacts with NO and O2 .
270                        Biotin synthase is an iron-sulfur protein that utilizes AdoMet to catalyze the
271 atalysis and place LipA within the family of iron-sulfur proteins that utilize AdoMet for radical-bas
272 ed with small interfering RNA against Rieske iron sulfur protein, the hypoxia-mediated Na,K-ATPase de
273 chrome b forms, with cytochrome c(1) and the iron--sulfur protein, the catalytic core of this multime
274 ough members of the Archaea produce numerous iron-sulfur proteins, the major cluster assembly protein
275                             For two types of iron-sulfur proteins, the rubredoxins and the high-poten
276 ond to the iron-sulfur cluster of the Rieske iron-sulfur protein to a cysteine results in a respirato
277 talyzed by MPP is blocked, causing precursor iron-sulfur protein to accumulate.
278                 Despite the homology of this iron-sulfur protein to aconitase, previously studied hom
279            Electron transfer from the Rieske iron-sulfur protein to cytochrome c(1) (cyt c(1)) in the
280 mplex, we mutagenized the presequence of the iron-sulfur protein to eliminate the original MPP site a
281     Most P450s interact with flavoenzymes or iron-sulfur proteins to receive electrons from NAD(P)H.
282 and core domains, (iii) stabilization of the iron-sulfur protein transmembrane helix, (iv) n-side cha
283 unoblotting revealed that the content of the iron-sulfur protein was decreased proportionately in the
284                        Import of this mutant iron-sulfur protein was inhibited by the same concentrat
285                     RamA, a 60-kDa monomeric iron-sulfur protein, was isolated from Methanosarcina ba
286 mall hairpin RNA directed against the Rieske iron-sulfur protein, we show that site III of the mitoch
287 cids located in the alpha1-beta4 loop of the iron-sulfur protein were mutated to uncharged residues a
288 itochondrial matrix while, at the same time, iron-sulfur proteins were deficient.
289 3K mutant enabled selective reduction of the iron-sulfur protein which in turn allowed the IR redox d
290                                       Mutant iron-sulfur protein which is processed to mature size in
291 sis from CO, CoA, and a methylated corrinoid iron-sulfur protein, which acts as a methyl donor.
292 cate that the catalytic domain of the Rieske iron-sulfur protein, which carries the [2Fe-2S] cluster,
293 s constitute a new subclass in the family of iron-sulfur proteins, which are distinguished not only b
294 equivalent of bovine adrenodoxin, is a small iron-sulfur protein with one [2Fe-2S] cluster.
295 a2epsilonx) subunits and a 100-kDa corrinoid/iron-sulfur protein with the 60- and 58-kDa subunits (ga
296 m bromide and Triton X-100: a 200-kDa nickel/iron-sulfur protein with the 89- and 19-kDa (alpha2epsil
297 2NT, ISP alpha 2NT and ISP beta 2NT (ISP for iron-sulfur protein) with gene designations ntdAaAbAcAd.

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