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1 aminotransferase 1, C-reactive protein, and myoglobin).
2 s (Human Serum Albumin, creatine kinase, and myoglobin).
3 er carbon monoxide (CO) photodissociation in myoglobin.
4 34 patients had elevated creatine kinase or myoglobin.
5 ell with a blue shift from 410 to 408 nm for myoglobin.
6 charge ladders" of azurin, cytochrome c, and myoglobin.
7 ed and thus providing a more detailed map of myoglobin.
8 er proteins, exemplified by cytochrome c and myoglobin.
9 ficant differences relative to the wild type myoglobin.
10 mple two-protein mixture of cytochrome c and myoglobin.
11 mit of 2.7 on the iron(IV)hydroxide pK(a) in myoglobin.
12 acetonitrile and acid unfolding pathways of myoglobin.
13 cating surpassing performance as compared to myoglobin.
14 ne serum albumin, cytochrome C, lysozyme and myoglobin.
15 e three-dimensional structure of sperm whale myoglobin.
16 the two-state folding proteins, Rnase A and myoglobin.
17 e all significantly impaired in mice without myoglobin.
18 er reduction potential compared to wild-type myoglobin.
19 nI or cTnT), creatine kinase-MB (CK-MB), and myoglobin.
20 DI-TOF-MS that ZnPP formation takes place in myoglobin.
21 vity in a heme-nonheme biosynthetic model in myoglobin.
22 r structures including metallo-proteins like myoglobin.
23 was found for zinc/iron transmetallation in myoglobin.
24 common ancestor of mammalian hemoglobins and myoglobins.
25 h the respiratory function in hemoglobin and myoglobins.
26 benzofuran cyclopropanation with engineered myoglobins.
27 nce of fragmentation of ubiquitin (8.6 kDa), myoglobin (17 kDa), and carbonic anhydrase (29 kDa) upon
30 ncreased levels at the start of MP (medians: myoglobin: 4377 ng/mL, CK: 1442 U/L), peaking 6 h after
31 aking 6 h after perfusate exchange (medians: myoglobin: 9206 ng/mL, CK: 3995 U/L) at timepoint 24.
32 f NO. from nitrite reduction by deoxygenated myoglobin activates canonical soluble guanylate cyclase/
33 r smaller proteins (ubiquitin, cytochrome c, myoglobin) again resemble those at AP, producing feature
37 was loss of abundance relative to uncrowded myoglobin analyzed using conventional HX-MS, 97% coverag
38 emperature aqueous solution containing 10 uM myoglobin and 5 ug mL(-1) trypsin is electrosonically sp
40 aneous quantification of cardiac biomarkers (myoglobin and cardiac troponin I) in the clinically sign
41 SI measurement revealed charge reduction for myoglobin and cytochrome c as a function of increasing p
42 Moreover, the chemosensor selectivity to the myoglobin and cytochrome c interferences was excellent w
43 ion reveals that the ion signal detected for myoglobin and cytochrome c reaches a plateau and then be
51 e conducted directed evolution of the Ir(Me)-myoglobin and generated mutants that form either enantio
52 ess (W-MR-Al) contained the lowest remaining myoglobin and haem iron content and also showed the lowe
56 NT-Pt/Mb) for the direct electrochemistry of myoglobin and its application towards determination of h
60 Thus, the sarcoplasmic fraction contained myoglobin and several enzymes that are essential for eff
61 nsport proteins (fatty acid-binding protein, myoglobin and somatic cytochrome-C) and others (creatine
62 uction of nitrite to nitric oxide by cardiac myoglobin and subsequent S-nitrosation of mitochondrial
66 ply charged ions of cytochrome c, ubiquitin, myoglobin, and bovine serum albumin formed by electrospr
69 ined for three different proteins (Trp-cage, myoglobin, and cytochrome c) with folding time constants
71 or two clinically relevant proteins, p53 and myoglobin, and for pathogenic and benign missense varian
76 well established that low concentrations of myoglobin are aberrantly expressed in a significant prop
79 , these results elucidate a new function for myoglobin as a modulator of mitochondrial dynamics and r
82 proving the suitability of using immobilized myoglobin as electrocatalyst in the nitrite reduction pr
86 and thionine acetate as redox mediators and myoglobin as the analyte, we demonstrate that normal pul
88 ination with whole-cell transformations, the myoglobin-based biocatalyst was used for the asymmetric
90 methodology enables the rapid development of myoglobin-based cyclopropanation biocatalysts featuring
94 n systems including: ribonuclease (Rnase) A, myoglobin, bovine carbonic anhydrase (BCA) II, hemoglobi
95 ontaining four model proteins (cytochrome c, myoglobin, bovine serum albumin (BSA), and beta-casein)
96 ontaining bradykinin, leucine enkephalin and myoglobin, but loss of the heme group from myoglobin occ
97 monitor the mild denaturation of horse heart myoglobin by acetonitrile, and the results showed good a
98 determined in the presence of reduced deoxy-myoglobin by measuring the formation of carboxy-myoglobi
99 urements of proteins (BSA, apomyoglobin, and myoglobin) by these HPsensors display much stronger sign
101 have shown that globins like hemoglobin and myoglobin can also oxidize H2S to thiosulfate and hydrop
103 um acetate (pH 6.9), several proteins (i.e., myoglobin, carbonic anhydrase, and cytochrome c) could b
107 methyl-substituted cyclopropanes by means of myoglobin-catalyzed olefin cyclopropanation reactions in
108 afast structural changes in the carbonmonoxy myoglobin complex upon photolysis of the Fe-CO bond.
109 The computed electronic structure of the myoglobin complexes and the nature of the Fe-O2 bonding
110 proteins, we have probed the active site of myoglobin compound II over the pH range of 3.9-9.5, usin
114 me E degrees in a functional model of CcO in myoglobin containing three histidines and one tyrosine i
117 O synthase knockout models suggest that only myoglobin contributes to systemic hypoxic vasodilatory r
120 were used to increase sample throughput; 930 myoglobin crystals mounted at random orientation inside
121 comparison of the mass spectral response for myoglobin, cytochrome c, and lysozyme is presented for l
122 when bound to the heme proteins hemoglobin, myoglobin, cytochrome P450 and cytochrome c, respectivel
124 dynamics and reveal a novel pathway by which myoglobin decreases breast cancer cell proliferation and
125 pin (HS, S = 2) pentacoordinated domed deoxy-myoglobin (deoxyMb) form upon ligand detachment from the
126 y, increased mitofusin expression was due to myoglobin-dependent free-radical production, leading to
127 luated using seven doubly-labeled mutants of myoglobin designed to monitor selected interhelical dist
130 d-coordination states of the heme complex in myoglobin during the preconditioning of ex vivo cardiomy
132 Its reduction to NO. via the heme globin myoglobin enhances blood flow and matches O(2) supply to
134 ated this pathway in a murine model in which myoglobin-expressing xenografts exhibited decreased tumo
135 on high resolution structural information of myoglobin, for the unfolded and even for the molten glob
138 port of multiply charged ions of the protein myoglobin, frequently used as a standard in TW IM-MS stu
141 cal characterization reveals that the mutant myoglobin has altered O(2) binding, exhibits a faster he
143 within the heme distal pocket of sperm whale myoglobin has offered well-defined diiron clusters for t
146 ight into the nature of the binding sites of myoglobin/heme, eIF4E/m(7)GTP, and human peptidyl-prolyl
150 ormers were compared to those of native holo-myoglobin (hMb) at pH 7 and extensively unfolded aMb at
151 ecularly imprinted polymer film (MIP), viz., myoglobin-imprinted electropolymerized poly(o-phenylened
154 equire a CO acceptor, believed to be reduced myoglobin in Mb-CO assays, in order to facilitate the re
155 emonstrate in vitro that expression of human myoglobin in MDA-MB-231, MDA-MB-468, and MCF7 breast can
157 pectra of the Fe(II)/Fe(III) redox couple of myoglobin in reduction and oxidation NPSV modes were in
160 reases the lipid peroxidase activity of this myoglobin in the presence of low concentrations of reduc
162 estigate the conformation and flexibility of myoglobin in three folded and partially folded states.
164 -step redox reaction of the surface-confined myoglobin, in a deaerated 0.1 M phosphate buffer, pH 7.
165 ages that markedly grow from cytochrome c to myoglobin indicate the dipole alignment of rare conforme
166 , as well as the loss of the heme group from myoglobin, indicate that a fraction of the protein popul
167 the micron outer diameter tips, but some apo-myoglobin ions are produced with the submicron tips.
168 A single charge-state distribution of holo-myoglobin ions is produced by nanoESI from a slightly ac
169 the Fe-O(2) center in oxy-hemoglobin and oxy-myoglobin is a long-standing issue in the field of bioin
172 xpressed only at low levels in these tumors, myoglobin is associated with attenuated tumor growth and
173 On the basis of recent observations that myoglobin is expressed in the vasculature of hypoxia-tol
175 trospray ionization (nESI) conditions, where myoglobin is sprayed from an aqueous solution buffered t
185 200 ppm) in washed mince (pH 6), with added myoglobin (Mb) and haemoglobin (Hb), from bighead carp (
186 bited (carboxy), and O2-bound (oxy) hemes in myoglobin (MB) and hemoglobin (HB) solutions and in porp
188 w involving a metal-substituted (M = Mg, Zn) myoglobin (Mb) and its physiological partner protein, cy
190 larly imprinted polymer (MIP) templated with myoglobin (Mb) and the reference non-imprinted polymer (
192 fer (ET) within a "charge-disproportionated" myoglobin (Mb) dimer with greatly enhanced affinity.
193 trocatalytic kinetics of covalently attached myoglobin (MB) films on magnetic nanoparticles (MB-MNP(c
201 ctrochemical detection of cardiac bio-marker myoglobin (Mb) on aptamer functionalized rGO/CNT nanostr
205 of the midpoint potential of skeletal horse myoglobin (Mb) with a heme-bound fluoride ion (Mb-F) rev
206 the proteins alpha-Lactalbumin (alphaLA) and myoglobin (Mb) with the biosurfactant rhamnolipid (RL).
207 rode (GCE) for the quantitative detection of myoglobin (Mb), a cardiac marker for acute myocardial in
208 y a particular fold originally identified in myoglobin (Mb), characterize the "hemoglobin (Hb) superf
209 s, e.g. urease, glucose oxidase, hemoglobin, myoglobin (Mb), conjugation with metals e.g. gold (Au),
210 own that muscle specific O2 binding protein, Myoglobin (Mb), is localized in mitochondria and interac
211 bovine serum albumin (BSA), heme-containing myoglobin (Mb), monoclonal antibody against viral protei
216 It was recently demonstrated that in ferric myoglobins (Mb) the fluorescence quenching of the photoe
219 t cancer patients, but the mechanism of this myoglobin-mediated protection against further cancer gro
221 s(4-sulfonatophenyl)porphyrinate) and ferric myoglobin (metMb) to quantitatively yield [Mn(TPPS)(NO)]
222 ascertain whether these two almost identical myoglobins might exert different functions and to contri
225 e way, consisting by the immobilization of a myoglobin (My) - single walled carbon nanotubes (SWCNT)
226 ific and specific proteins including cardiac myoglobin (MYG), bovine serum albumin (BSA) and cardiac
227 tandard proteins (e.g. cytochrome C (Cyt-C), myoglobin (MYO) and bovine serum albumin (BSA)) have bee
229 onin T (TnT), bovine serum albumin (BSA) and myoglobin (Myo) in the performance of the sensor was tes
230 igh-sensitivity troponin T, creatine kinase, myoglobin, N-terminal B-type natriuretic peptide, C-reac
231 an adaptive molecular signature of elevated myoglobin net surface charge in diving species that is m
233 tions, and on the other a different yield of myoglobin-NO formation was experimentally observed throu
235 d myoglobin, but loss of the heme group from myoglobin occurs as a result of the denaturing solution
236 noconjugates consisting of globular cores of myoglobin or lysozyme and demonstrate that the derived s
237 e diffusion rates of lysozyme, cytochrome c, myoglobin, ovalbumin, bovine serum albumin, and etanerce
239 differences between groups, indicating that myoglobin overexpression does not affect arteriogenesis.
240 combined effect of pH (from 7.2 to 3.2) and myoglobin oxidation state was evaluated in the reaction
244 by measuring the HX-MS signal intensities of myoglobin peptides from crowded samples containing 300 g
246 sociated with the heme prosthetic group in a myoglobin-polymer surfactant solvent-free liquid are inv
247 cells (hMSCs) with synthetic membrane-active myoglobin-polymer-surfactant complexes can provide a res
249 tandem mass spectrometry (MS/MS) on a large myoglobin proteolytic peptide (8 kDa) provides a resolut
252 rein, we report a signaling pathway by which myoglobin regulates mitochondrial dynamics and thereby d
254 The single mutation differentiating the two myoglobins resulted in strongly affecting the plasticity
255 lled carbon nanotubes-platinum nanoparticles/myoglobin (RGO-MWCNT-Pt/Mb) for the direct electrochemis
257 o contribute to a deeper understanding about myoglobin's oxygen-level dependent functioning, they hav
258 ns are unable to catalyze this reaction, the myoglobin scaffold could be remodeled by protein enginee
260 Its application to a membrane protein and to myoglobin show that the approach is sensitive to protein
263 of type I fibers characterized by increased myoglobin, slow twitch markers [myosin heavy chain 7 (My
264 Sequence analysis revealed both species' myoglobin structures consist of 153 amino acids, differi
265 d resting levels of ATP, phosphocreatine and myoglobin, suggesting that sildenafil improves dystrophi
266 iological catalysts derived from sperm whale myoglobin that exploit a carbene transfer mechanism for
267 Here, we use a biosynthetic model of HCO in myoglobin that selectively binds different non-haem meta
269 termining the three-dimensional structure of myoglobin, the first solved structure of a protein, fund
270 evidence of such 'proteinquake' observed in myoglobin through femtosecond X-ray solution scattering
271 ective variable space for CO localization in myoglobin to estimate the kinetics of entry, exit, and i
273 facilitated by limited pepsin proteolysis of myoglobin to open a reaction channel for metal exchange
274 coefficients, 0.9901, 0.9921, and 0.9980 for myoglobin, transferrin, and thyroglobulin, respectively,
275 rom three procedure blanks were obtained for myoglobin, transferrin, and thyroglobulin, respectively.
277 roteins and mixtures of up to five proteins (myoglobin, troponin C, actin, bovine serum albumin (BSA)
280 the reaction of azide with microcrystalline myoglobin, using only a fraction of the sample required
281 vity, resulting in the identification of the myoglobin variant Mb(L29S,H64V,V68F), which is capable o
283 tegy was implemented and applied to engineer myoglobin variants capable of providing access to 1-carb
284 ms of these products could be obtained using myoglobin variants featuring stereodivergent selectivity
285 of the active site via protein engineering, myoglobin variants with stereodivergent selectivity were
287 effect of immobilization on the structure of myoglobin was fully investigated using UV/visible, Fouri
291 age of molecular biology had just begun, and myoglobin was the only protein with a known high-resolut
294 sv) for hemin, cytochrome c, hemoglobin, and myoglobin were 5.6x10(7), 1.7x10(7), 1.6x10(7), and 6.2x
295 nces of Japanese quail and northern bobwhite myoglobin were deduced by cDNA cloning of the coding seq
298 also used to replace a native salt bridge in myoglobin with an intramolecular crosslink to a proximal
299 the remote site or nitrite bioactivation by myoglobin within the target organ abrogated the cardiopr
300 ensional structure of a protein, sperm-whale myoglobin, worthy of a Nobel Prize in Chemistry in 1962.