Literature DB >> 34279769

Plausible Emergence and Self Assembly of a Primitive Phospholipid from Reduced Phosphorus on the Primordial Earth.

Michael O Gaylor1, Pere Miro2, Bess Vlaisavljevich2, Ashen Anuradha Suduweli Kondage2, Laura M Barge3, Arthur Omran4,5, Patrick Videau6,7, Vaille A Swenson8,9, Lucas J Leinen8, Nathaniel W Fitch8, Krista L Cole8, Chris Stone6, Samuel M Drummond8, Kayli Rageth8, Lillian R Dewitt8, Sarah González Henao10, Vytis Karanauskus10.   

Abstract

How life arose on the primitive Earth is one of the biggest questions in science. Biomolecular emergence scenarios have proliferated in the literature but accounting for the ubiquity of oxidized (+ 5) phosphate (PO43-) in extant biochemistries has been challenging due to the dearth of phosphate and molecular oxygen on the primordial Earth. A compelling body of work suggests that exogenous schreibersite ((Fe,Ni)3P) was delivered to Earth via meteorite impacts during the Heavy Bombardment (ca. 4.1-3.8 Gya) and there converted to reduced P oxyanions (e.g., phosphite (HPO32-) and hypophosphite (H2PO2-)) and phosphonates. Inspired by this idea, we review the relevant literature to deduce a plausible reduced phospholipid analog of modern phosphatidylcholines that could have emerged in a primordial hydrothermal setting. A shallow alkaline lacustrine basin underlain by active hydrothermal fissures and meteoritic schreibersite-, clay-, and metal-enriched sediments is envisioned. The water column is laden with known and putative primordial hydrothermal reagents. Small system dimensions and thermal- and UV-driven evaporation further concentrate chemical precursors. We hypothesize that a reduced phospholipid arises from Fischer-Tropsch-type (FTT) production of a C8 alkanoic acid, which condenses with an organophosphinate (derived from schreibersite corrosion to hypophosphite with subsequent methylation/oxidation), to yield a reduced protophospholipid. This then condenses with an α-amino nitrile (derived from Strecker-type reactions) to form the polar head. Preliminary modeling results indicate that reduced phospholipids do not aggregate rapidly; however, single layer micelles are stable up to aggregates with approximately 100 molecules.
© 2021. The Author(s), under exclusive licence to Springer Nature B.V.

Entities:  

Keywords:  Hydrothermal; Origins of life; Phosphorus; Prebiotic; Reduced phospholipid; Self-assembly

Year:  2021        PMID: 34279769     DOI: 10.1007/s11084-021-09613-4

Source DB:  PubMed          Journal:  Orig Life Evol Biosph        ISSN: 0169-6149            Impact factor:   1.950


  129 in total

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10.  Revisiting OPLS-AA Force Field for the Simulation of Anionic Surfactants in Concentrated Electrolyte Solutions.

Authors:  Safwat Abdel-Azeim
Journal:  J Chem Theory Comput       Date:  2020-01-27       Impact factor: 6.006

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  1 in total

1.  Oxidative Phosphorus Chemistry Perturbed by Minerals.

Authors:  Arthur Omran; Josh Abbatiello; Tian Feng; Matthew A Pasek
Journal:  Life (Basel)       Date:  2022-01-28
  1 in total

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