Multifunctional Cytochrome c: Learning New Tricks from an Old Dog

被引:200
作者
Alvarez-Paggi, Damian [1 ,2 ,6 ]
Hannibal, Luciana [3 ,4 ,5 ]
Castro, Maria A. [1 ,2 ]
Oviedo-Rouco, Santiago [1 ,2 ]
Demicheli, Veronica [4 ,5 ]
Tortora, Veronica [4 ,5 ]
Tomasina, Florencia [4 ,5 ]
Radi, Rafael [4 ,5 ]
Murgida, Daniel H. [1 ,2 ]
机构
[1] Univ Buenos Aires, Dept Quim Inorgan Analit & Quim Fis, Fac Ciencias Exactas & Nat, Ciudad Univ,Pab 2,Piso 1,C1428EHA, Buenos Aires, DF, Argentina
[2] Univ Buenos Aires, INQUIMAE CONICET UBA, Fac Ciencias Exactas & Nat, Ciudad Univ,Pab 2,Piso 1,C1428EHA, Buenos Aires, DF, Argentina
[3] Univ Klinikum Freiburg, Dept Pediat, Mathildenstr 1, D-79106 Freiburg, Germany
[4] Univ Republica, Dept Bioquim, Fac Med, Ave Gral Flores 2125, Montevideo 11800, Uruguay
[5] Univ Republica, Ctr Free Radical & Biomed Res, Fac Med, Ave Gral Flores 2125, Montevideo 11800, Uruguay
[6] FIL CONICET, Inst Invest Bioquim Buenos Aires, Buenos Aires, DF, Argentina
关键词
DIRECT ELECTRON-TRANSFER; ALKALINE CONFORMATIONAL TRANSITION; SELF-ASSEMBLED MONOLAYERS; PROTEIN-PROTEIN INTERACTIONS; YEAST ISO-1-CYTOCHROME C; TEMPERATURE IONIC LIQUID; PROGRAMMED CELL-DEATH; MOLTEN-GLOBULE STATE; C/CARDIOLIPIN PEROXIDASE COMPLEXES; DIRECT ELECTROCHEMICAL-BEHAVIOR;
D O I
10.1021/acs.chemrev.7b00257
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Cytochrome c (cyt c) is a small soluble heme protein characterized by a relatively flexible structure, particularly in the ferric form, such that it is able to sample a broad conformational space. Depending on the specific conditions, interactions, and cellular localization, different conformations may be stabilized, which differ in structure, redox properties, binding affinities, and enzymatic activity. The primary function is electron shuttling in oxidative phosphorylation, and is exerted by the so-called native cyt c in the intermembrane mitochondrial space of healthy cells. Under pro-apoptotic conditions, however, cyt c gains cardiolipin peroxidase activity, translocates into the cytosol to engage in the intrinsic apoptotic pathway, and enters the nucleus where it impedes nucleosome assembly. Other reported functions, include cytosolic redox sensing and involvement in the mitochondrial oxidative folding machinery. Moreover, post-translational modifications such as nitration, phosphorylation, and sulfoxidation of specific amino acids induce alternative conformations with differential properties, at least in vitro. Similar structural and functional alterations are elicited by biologically significant electric fields and by naturally occurring mutations of human cyt c that, along with mutations at the level of the maturation system, are associated with specific diseases. Here, we summarize current knowledge and recent advances in understanding the different structural, dynamic, and thermodynamic factors that regulate the primary electron transfer function, as well as alternative functions and conformations of cyt c. Finally, we present recent technological applications of this moonlighting protein.
引用
收藏
页码:13382 / 13460
页数:79
相关论文
共 965 条
[11]   EFFECT OF SPECIFIC LYSINE MODIFICATION ON REDUCTION OF CYTOCHROME-C BY SUCCINATE-CYTOCHROME-C REDUCTASE [J].
AHMED, AJ ;
SMITH, HT ;
SMITH, MB ;
MILLETT, FS .
BIOCHEMISTRY, 1978, 17 (13) :2479-2483
[12]   Fabrication of a highly selective nonenzymatic amperometric sensor for hydrogen peroxide based on nickel foam/cytochrome c modified electrode [J].
Akhtar, Naeem ;
El-Safty, Sherif A. ;
Khairy, Md. ;
El-Said, Waleed A. .
SENSORS AND ACTUATORS B-CHEMICAL, 2015, 207 :158-166
[13]   Tunneling of redox enzymes to design nano-probes for monitoring NAD+ dependent bio-catalytic activity [J].
Akshath, Uchangi Satyaprasad ;
Bhatt, Praveena .
BIOSENSORS & BIOELECTRONICS, 2016, 85 :240-246
[14]   Characteristics of fibers formed by cytochrome c and induced by anionic phospholipids [J].
Alakoskela, Juha-Matti ;
Jutila, Arimatti ;
Simonsen, Adam C. ;
Pirneskoski, Jussi ;
Pyhajoki, Sinikka ;
Turunen, Raija ;
Marttila, Sani ;
Mouritsen, Ole G. ;
Goormaghtigh, Erik ;
Kinnunen, Paavo K. J. .
BIOCHEMISTRY, 2006, 45 (45) :13447-13453
[15]   Cytochrome c biogenesis in mitochondria - Systems III and V [J].
Allen, James W. A. .
FEBS JOURNAL, 2011, 278 (22) :4198-4216
[16]   Why isn't 'standard' heme good enough for c-type and d1-type cytochromes? [J].
Allen, JWA ;
Barker, PD ;
Daltrop, O ;
Stevens, JM ;
Tomlinson, EJ ;
Sinha, N ;
Sambongi, Y ;
Ferguson, SJ .
DALTON TRANSACTIONS, 2005, (21) :3410-3418
[17]   Cytochrome-c detection -: A diagnostic marker for myocardial infarction [J].
Alleyne, T ;
Joseph, J ;
Sampson, V .
APPLIED BIOCHEMISTRY AND BIOTECHNOLOGY, 2001, 90 (02) :97-105
[18]   Arrangement of electron transport chain components in bovine mitochondrial supercomplex I1III2IV1 [J].
Althoff, Thorsten ;
Mills, Deryck J. ;
Popot, Jean-Luc ;
Kuehlbrandt, Werner .
EMBO JOURNAL, 2011, 30 (22) :4652-4664
[19]   Computer simulation and SERR detection of cytochrome c dynamics at SAM-coated electrodes [J].
Alvarez Paggi, Damian ;
Martin, Diego F. ;
Kranich, Anja ;
Hildebrandt, Peter ;
Marti, Marcelo A. ;
Murgida, Daniel H. .
ELECTROCHIMICA ACTA, 2009, 54 (22) :4963-4970
[20]   The role of protein dynamics and thermal fluctuations in regulating cytochrome c/cytochrome c oxidase electron transfer [J].
Alvarez-Paggi, Damian ;
Zitare, Ulises ;
Murgida, Daniel H. .
BIOCHIMICA ET BIOPHYSICA ACTA-BIOENERGETICS, 2014, 1837 (07) :1196-1207