[Structural and functional properties of the C-terminal region of mitochondrial ADP/ATP carrier]. 2010

Yasuo Shinohara, and Mitsuru Hashimoto, and Yoshitaka Kihira, and Kazuto Ohkura, and Eiji Majima, and Hiroshi Terada
Institute for Genome Research, University of Tokushima, Tokushima, Japan. yshinoha@genome.tokushima-u.ac.jp

Mitochondrial ADP/ATP carrier (AAC) is a protein catalyzing the transport of adenine nucleotides across inner mitochondrial membrane. In this review article, we first briefly introduce structural and functional properties of this protein. Next, we describe the results of our recent studies on the difference in the C-terminal region between yeast type 2 AAC isoform and bovine type 1 AAC isoform. Furthermore, based on the reactivities of cysteine residues that replaced amino acids in the sixth transmembrane segment, the probable structural features of the C-terminal region of this carrier are discussed.

UI MeSH Term Description Entries
D007527 Isoenzymes Structurally related forms of an enzyme. Each isoenzyme has the same mechanism and classification, but differs in its chemical, physical, or immunological characteristics. Alloenzyme,Allozyme,Isoenzyme,Isozyme,Isozymes,Alloenzymes,Allozymes
D008969 Molecular Sequence Data Descriptions of specific amino acid, carbohydrate, or nucleotide sequences which have appeared in the published literature and/or are deposited in and maintained by databanks such as GENBANK, European Molecular Biology Laboratory (EMBL), National Biomedical Research Foundation (NBRF), or other sequence repositories. Sequence Data, Molecular,Molecular Sequencing Data,Data, Molecular Sequence,Data, Molecular Sequencing,Sequencing Data, Molecular
D002417 Cattle Domesticated bovine animals of the genus Bos, usually kept on a farm or ranch and used for the production of meat or dairy products or for heavy labor. Beef Cow,Bos grunniens,Bos indicus,Bos indicus Cattle,Bos taurus,Cow,Cow, Domestic,Dairy Cow,Holstein Cow,Indicine Cattle,Taurine Cattle,Taurus Cattle,Yak,Zebu,Beef Cows,Bos indicus Cattles,Cattle, Bos indicus,Cattle, Indicine,Cattle, Taurine,Cattle, Taurus,Cattles, Bos indicus,Cattles, Indicine,Cattles, Taurine,Cattles, Taurus,Cow, Beef,Cow, Dairy,Cow, Holstein,Cows,Dairy Cows,Domestic Cow,Domestic Cows,Indicine Cattles,Taurine Cattles,Taurus Cattles,Yaks,Zebus
D000226 Mitochondrial ADP, ATP Translocases A class of nucleotide translocases found abundantly in mitochondria that function as integral components of the inner mitochondrial membrane. They facilitate the exchange of ADP and ATP between the cytosol and the mitochondria, thereby linking the subcellular compartments of ATP production to those of ATP utilization. ADP,ATP Carrier,ADP,ATP Translocator Protein,Adenine Nucleotide Translocase,ADP Translocase,ATP Translocase,ATP,ADP-Carrier,ATP-ADP Translocase,Adenine Nucleotide Carrier (Mitochondrial),Mitochondrial ADP-ATP Carriers,ADP-ATP Carriers, Mitochondrial,Mitochondrial ADP ATP Carriers
D000227 Adenine Nucleotides Adenine Nucleotide,Adenosine Phosphate,Adenosine Phosphates,Nucleotide, Adenine,Nucleotides, Adenine,Phosphate, Adenosine,Phosphates, Adenosine
D000595 Amino Acid Sequence The order of amino acids as they occur in a polypeptide chain. This is referred to as the primary structure of proteins. It is of fundamental importance in determining PROTEIN CONFORMATION. Protein Structure, Primary,Amino Acid Sequences,Sequence, Amino Acid,Sequences, Amino Acid,Primary Protein Structure,Primary Protein Structures,Protein Structures, Primary,Structure, Primary Protein,Structures, Primary Protein
D000818 Animals Unicellular or multicellular, heterotrophic organisms, that have sensation and the power of voluntary movement. Under the older five kingdom paradigm, Animalia was one of the kingdoms. Under the modern three domain model, Animalia represents one of the many groups in the domain EUKARYOTA. Animal,Metazoa,Animalia
D051336 Mitochondrial Membranes The two lipoprotein layers in the MITOCHONDRION. The outer membrane encloses the entire mitochondrion and contains channels with TRANSPORT PROTEINS to move molecules and ions in and out of the organelle. The inner membrane folds into cristae and contains many ENZYMES important to cell METABOLISM and energy production (MITOCHONDRIAL ATP SYNTHASE). Inner Mitochondrial Membrane,Mitochondrial Membrane, Inner,Mitochondrial Membrane, Outer,Outer Mitochondrial Membrane,Inner Mitochondrial Membranes,Membrane, Inner Mitochondrial,Membrane, Mitochondrial,Membrane, Outer Mitochondrial,Membranes, Inner Mitochondrial,Membranes, Mitochondrial,Membranes, Outer Mitochondrial,Mitochondrial Membrane,Mitochondrial Membranes, Inner,Mitochondrial Membranes, Outer,Outer Mitochondrial Membranes
D029701 Saccharomyces cerevisiae Proteins Proteins obtained from the species SACCHAROMYCES CEREVISIAE. The function of specific proteins from this organism are the subject of intense scientific interest and have been used to derive basic understanding of the functioning similar proteins in higher eukaryotes. Baker's Yeast Proteins,S cerevisiae Proteins

Related Publications

Yasuo Shinohara, and Mitsuru Hashimoto, and Yoshitaka Kihira, and Kazuto Ohkura, and Eiji Majima, and Hiroshi Terada
November 2008, Biological & pharmaceutical bulletin,
Yasuo Shinohara, and Mitsuru Hashimoto, and Yoshitaka Kihira, and Kazuto Ohkura, and Eiji Majima, and Hiroshi Terada
June 2000, Protein expression and purification,
Yasuo Shinohara, and Mitsuru Hashimoto, and Yoshitaka Kihira, and Kazuto Ohkura, and Eiji Majima, and Hiroshi Terada
February 1998, Biochimie,
Yasuo Shinohara, and Mitsuru Hashimoto, and Yoshitaka Kihira, and Kazuto Ohkura, and Eiji Majima, and Hiroshi Terada
November 2009, Anticancer research,
Yasuo Shinohara, and Mitsuru Hashimoto, and Yoshitaka Kihira, and Kazuto Ohkura, and Eiji Majima, and Hiroshi Terada
August 2006, Physiology (Bethesda, Md.),
Yasuo Shinohara, and Mitsuru Hashimoto, and Yoshitaka Kihira, and Kazuto Ohkura, and Eiji Majima, and Hiroshi Terada
October 2008, Journal of bioenergetics and biomembranes,
Yasuo Shinohara, and Mitsuru Hashimoto, and Yoshitaka Kihira, and Kazuto Ohkura, and Eiji Majima, and Hiroshi Terada
January 1985, Annals of the New York Academy of Sciences,
Yasuo Shinohara, and Mitsuru Hashimoto, and Yoshitaka Kihira, and Kazuto Ohkura, and Eiji Majima, and Hiroshi Terada
August 2019, Current opinion in structural biology,
Yasuo Shinohara, and Mitsuru Hashimoto, and Yoshitaka Kihira, and Kazuto Ohkura, and Eiji Majima, and Hiroshi Terada
July 1999, The Journal of biological chemistry,
Yasuo Shinohara, and Mitsuru Hashimoto, and Yoshitaka Kihira, and Kazuto Ohkura, and Eiji Majima, and Hiroshi Terada
June 2024, The EMBO journal,
Copied contents to your clipboard!