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「ミトコンドリア内膜は細菌から引き継がれて進化した」の検索結果

923 件中 10 件を表示 (3477 ms) · ⭐ 保存した論文

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(mitochondrial inner membrane[MeSH] OR mitochondrial membrane) AND (bacterial evolution OR endosymbiotic theory OR bacterial origin OR phylogeny)

💡 ミトコンドリアの内膜と細菌由来の進化的起源(エンドシンビオント説)を組み合わせた検索

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  • Suppression of RNA recognition by Toll-like receptors: the impact of nucleoside modification and the evolutionary origin of RNA.

    Katalin Karikó, Michael Buckstein, Houping Ni 他 · Immunity · 2005

    DNA and RNA stimulate the mammalian innate immune system through activation of Toll-like receptors (TLRs). DNA containing methylated CpG motifs, however, is not stimulatory. Selected nucleosides in naturally occurring RNA are also methylated or otherwise modified, but the immunomodulatory effects of these alterations remain untested. We show that RNA signals through human TLR3, TLR7, and TLR8, but…

    📄 PubMed で読む (PMID: 16111635)
  • Mitochondria and cell death-associated inflammation.

    Esmee Vringer, Stephen W G Tait · Cell death and differentiation · 2023

    Mitochondria have recently emerged as key drivers of inflammation associated with cell death. Many of the pro-inflammatory pathways activated during cell death occur upon mitochondrial outer membrane permeabilization (MOMP), the pivotal commitment point to cell death during mitochondrial apoptosis. Permeabilised mitochondria trigger inflammation, in part, through the release of mitochondrial-deriv…

    📄 PubMed で読む (PMID: 36447047)
  • Structure and Function of the Mitochondrial Ribosome.

    Basil J Greber, Nenad Ban · Annual review of biochemistry · 2016

    Mitochondrial ribosomes (mitoribosomes) perform protein synthesis inside mitochondria, the organelles responsible for energy conversion and adenosine triphosphate production in eukaryotic cells. Throughout evolution, mitoribosomes have become functionally specialized for synthesizing mitochondrial membrane proteins, and this has been accompanied by large changes to their structure and composition.…

    📄 PubMed で読む (PMID: 27023846)
  • MICU1 Confers Protection from MCU-Dependent Manganese Toxicity.

    Jennifer Wettmarshausen, Valerie Goh, Kai-Ting Huang 他 · Cell reports · 2018

    The mitochondrial calcium uniporter is a highly selective ion channel composed of species- and tissue-specific subunits. However, the functional role of each component still remains unclear. Here, we establish a synthetic biology approach to dissect the interdependence between the pore-forming subunit MCU and the calcium-sensing regulator MICU1. Correlated evolutionary patterns across 247 eukaryot…

    📄 PubMed で読む (PMID: 30403999)
  • How energy flow shapes cell evolution.

    Nick Lane · Current biology : CB · 2020

    How mitochondria shaped the evolution of eukaryotic complexity has been controversial for decades. The discovery of the Asgard archaea, which harbor close phylogenetic ties to the eukaryotes, supports the idea that a critical endosymbiosis between an archaeal host and a bacterial endosymbiont transformed the selective constraints present at the origin of eukaryotes. Cultured Asgard archaea are typ…

    📄 PubMed で読む (PMID: 32428484)
  • Intracytoplasmic-membrane development in alphaproteobacteria involves the homolog of the mitochondrial crista-developing protein Mic60.

    Sergio A Muñoz-Gómez, Lawrence Rudy Cadena, Alastair T Gardiner 他 · Current biology : CB · 2023

    Mitochondrial cristae expand the surface area of respiratory membranes and ultimately allow for the evolutionary scaling of respiration with cell volume across eukaryotes. The discovery of Mic60 homologs among alphaproteobacteria, the closest extant relatives of mitochondria, suggested that cristae might have evolved from bacterial intracytoplasmic membranes (ICMs). Here, we investigated the predi…

    📄 PubMed で読む (PMID: 36921606)
  • Mitochondrial processing peptidases.

    Oleksandr Gakh, Patrizia Cavadini, Grazia Isaya 他 · Biochimica et biophysica acta · 2002

    Three peptidases are responsible for the proteolytic processing of both nuclearly and mitochondrially encoded precursor polypeptides targeted to the various subcompartments of the mitochondria. Mitochondrial processing peptidase (MPP) cleaves the vast majority of mitochondrial proteins, while inner membrane peptidase (IMP) and mitochondrial intermediate peptidase (MIP) process specific subsets of …

    📄 PubMed で読む (PMID: 12191769)
  • Mitochondrial metabolite transport.

    Ferdinando Palmieri, Ciro Leonardo Pierri · Essays in biochemistry · 2010

    The flux of a variety of metabolites, nucleotides and coenzymes across the inner membrane of mitochondria is catalysed by a nuclear-coded superfamily of secondary transport proteins called MCs (mitochondrial carriers). The importance of MCs is demonstrated by their wide distribution in all eukaryotes, their role in numerous metabolic pathways and cell functions, and the identification of several d…

    📄 PubMed で読む (PMID: 20533899)
  • Deep origin of plastid/parasite ATP/ADP translocases.

    Haleh Amiri, Olof Karlberg, Siv G E Andersson 他 · Journal of molecular evolution · 2003

    Membrane proteins that transport ATP and ADP have been identified in mitochondria, plastids, and obligate intracellular parasites. The mitochondrial ATP/ADP transporters are derived from a broad-specificity transport family of eukaryotic origin, whereas the origin of the plastid/parasite ATP/ADP translocase is more elusive. Here we present the sequences of five genes coding for ATP/ADP translocase…

    📄 PubMed で読む (PMID: 12574860)
  • [Two faces of cytochrome c].

    Lech Wojtczak · Postepy biochemii · 2006

    This is an outline of the history of research on cytochrome c. Cytochromes were first discovered by Charles A. MacMunn (1886) and re-discovered by David Keilin (1925) who also identified their function in cell respiration. The role of cytochrome c in the mitochondrial electron transport chain has been well established, thus pointing to a vital role of this haemoprotein in cell function. Yet, towar…

    📄 PubMed で読む (PMID: 17078501)