Peptides En Route from Prebiotic to Biotic Catalysis

被引:1
作者
Hlouchova, Klara [1 ,2 ]
机构
[1] Charles Univ Prague, Fac Sci, Dept Cell Biol, Prague 12800, Czech Republic
[2] Czech Acad Sci, Inst Organ Chem & Biochem, Prague 16610, Czech Republic
关键词
AMINO-ACIDS; POLYPEPTIDES; EMERGENCE;
D O I
10.1021/acs.accounts.4c00137
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
In the quest to understand prebiotic catalysis, different molecular entities, mainly minerals, metal ions, organic cofactors, and ribozymes, have been implied as key players. Of these, inorganic and organic cofactors have gained attention for their ability to catalyze a wide array of reactions central to modern metabolism and frequently participate in these reactions within modern enzymes. Nevertheless, bridging the gap between prebiotic and modern metabolism remains a fundamental question in the origins of life. In this Account, peptides are investigated as a potential bridge linking prebiotic catalysis by minerals/cofactors to enzymes that dominate modern life's chemical reactions. Before ribosomal synthesis emerged, peptides of random sequences were plausible on early Earth. This was made possible by different sources of amino acid delivery and synthesis, as well as their condensation under a variety of conditions. Early peptides and proteins probably exhibited distinct compositions, enriched in small aliphatic and acidic residues. An increase in abundance of amino acids with larger side chains and canonical basic groups was most likely dependent on the emergence of their more challenging (bio)synthesis. Pressing questions thus arise: how did this composition influence the early peptide properties, and to what extent could they contribute to early metabolism? Recent research from our group and colleagues shows that highly acidic peptides/proteins comprising only the presumably "early" amino acids are in fact competent at secondary structure formation and even possess adaptive folding characteristics such as spontaneous refoldability and chaperone independence to achieve soluble structures. Moreover, we showed that highly acidic proteins of presumably "early" composition can still bind RNA by utilizing metal ions as cofactors to bridge carboxylate and phosphoester functional groups. And finally, ancient organic cofactors were shown to be capable of binding to sequences from amino acids considered prebiotically plausible, supporting their folding properties and providing functional groups, which would nominate them as catalytic hubs of great prebiotic relevance. These findings underscore the biochemical plausibility of an early peptide/protein world devoid of more complex amino acids yet collaborating with other catalytic species. Drawing from the mechanistic properties of protein-cofactor catalysis, it is speculated here that the early peptide/protein-cofactor ensemble could facilitate a similar range of chemical reactions, albeit with lower catalytic rates. This hypothesis invites a systematic experimental test. Nonetheless, this Account does not exclude other scenarios of prebiotic-to-biotic catalysis or prioritize any specific pathways of prebiotic syntheses. The objective is to examine peptide availability, composition, and functional potential among the various factors involved in the emergence of early life.
引用
收藏
页码:2027 / 2037
页数:11
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共 67 条
  • [1] A vocabulary of ancient peptides at the origin of folded proteins
    Alva, Vikram
    Soeding, Johannes
    Lupas, Andrei N.
    [J]. ELIFE, 2015, 4
  • [2] On the Mechanism and Origin of Isoleucyl-tRNA Synthetase Editing against Norvaline
    Bilus, Mirna
    Semanjski, Maja
    Mocibob, Marko
    Zivkovic, Igor
    Cvetesic, Nevena
    Tawfik, Dan S.
    Toth-Petroczy, Agnes
    Macek, Boris
    Gruic-Sovulj, Ita
    [J]. JOURNAL OF MOLECULAR BIOLOGY, 2019, 431 (06) : 1284 - 1297
  • [3] Analysis of Evolutionarily Independent Protein-RNA Complexes Yields a Criterion to Evaluate the Relevance of Prebiotic Scenarios
    Blanco, Celia
    Bayas, Marco
    Yan, Fu
    Chen, Irene A.
    [J]. CURRENT BIOLOGY, 2018, 28 (04) : 526 - +
  • [4] The Chemical Roots of Iron-Sulfur Dependent Metabolism
    Bonfio, Claudia
    Mansy, Sheref S.
    [J]. BIOCHEMISTRY, 2017, 56 (40) : 5225 - 5226
  • [5] Tracing Evolution Through Protein Structures: Nature Captured in a Few Thousand Folds
    Bordin, Nicola
    Sillitoe, Ian
    Lees, Jonathan G.
    Orengo, Christine
    [J]. FRONTIERS IN MOLECULAR BIOSCIENCES, 2021, 8
  • [6] BETA-STRUCTURES OF ALTERNATING POLYPEPTIDES AND THEIR POSSIBLE PREBIOTIC SIGNIFICANCE
    BRACK, A
    ORGEL, LE
    [J]. NATURE, 1975, 256 (5516) : 383 - 387
  • [7] Understanding prebiotic chemistry through the analysis of extraterrestrial amino acids and nucleobases in meteorites
    Burton, Aaron S.
    Stern, Jennifer C.
    Elsila, Jamie E.
    Glavin, Daniel P.
    Dworkin, Jason P.
    [J]. CHEMICAL SOCIETY REVIEWS, 2012, 41 (16) : 5459 - 5472
  • [8] Cofactors as Molecular Fossils To Trace the Origin and Evolution of Proteins
    Chu, Xin-Yi
    Zhang, Hong-Yu
    [J]. CHEMBIOCHEM, 2020, 21 (22) : 3161 - 3168
  • [9] A mechanism for the association of amino acids with their codons and the origin of the genetic code
    Copley, SD
    Smith, E
    Morowitz, HJ
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2005, 102 (12) : 4442 - 4447
  • [10] Prebiotic amino acids bind to and stabilize prebiotic fatty acid membranes
    Cornell, Caitlin E.
    Black, Roy A.
    Xue, Mengjun
    Litz, Helen E.
    Ramsay, Andrew
    Gordon, Moshe
    Mileant, Alexander
    Cohen, Zachary R.
    Williams, James A.
    Lee, Kelly K.
    Drobny, Gary P.
    Keller, Sarah L.
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2019, 116 (35) : 17239 - 17244