Aerosols are abundant on the Earth and likely played a role in prebiotic chemistry. Aerosol particles coagulate, divide, and sample a wide variety of conditions conducive to synthesis. While much work has centered on the generation of aerosols and their chemistry, little effort has been expended on their fate after settling. Here, using a laboratory model, we show that aqueous aerosols transform into cell-sized protocellular structures upon entry into aqueous solution containing lipid. Such processes provide for a heretofore unexplored pathway for the assembly of the building blocks of life from disparate geochemical regions within cell-like vesicles with a lipid bilayer in a manner that does not lead to dilution. The efficiency of aerosol to vesicle transformation is high with prebiotically plausible lipids, such as decanoic acid and decanol, that were previously shown to be capable of forming growing and dividing vesicles. The high transformation efficiency with 10-carbon lipids in landing solutions is consistent with the surface properties and dynamics of short-chain lipids. Similar processes may be operative today as fatty acids are common constituents of both contemporary aerosols and the sea. Our work highlights a new pathway that may have facilitated the emergence of the Earth’s first cells.

Model atmospheric aerosols convert to cell-sized vesicles upon entry into lipid coated aqueous solution / Nader, Serge; Baccouche, Alexandre; Connolly, Fiona; Abou-Ghanem, Maya; Styler, Sarah A; Lewis, John D; Pink, Desmond; Mansy, Sheref S. - In: ACS EARTH AND SPACE CHEMISTRY. - ISSN 2472-3452. - ELETTRONICO. - 2023, 7:1(2023), pp. 252-259. [10.1021/acsearthspacechem.2c00328]

Model atmospheric aerosols convert to cell-sized vesicles upon entry into lipid coated aqueous solution

Baccouche, Alexandre
Secondo
;
Mansy, Sheref S
Ultimo
2023-01-01

Abstract

Aerosols are abundant on the Earth and likely played a role in prebiotic chemistry. Aerosol particles coagulate, divide, and sample a wide variety of conditions conducive to synthesis. While much work has centered on the generation of aerosols and their chemistry, little effort has been expended on their fate after settling. Here, using a laboratory model, we show that aqueous aerosols transform into cell-sized protocellular structures upon entry into aqueous solution containing lipid. Such processes provide for a heretofore unexplored pathway for the assembly of the building blocks of life from disparate geochemical regions within cell-like vesicles with a lipid bilayer in a manner that does not lead to dilution. The efficiency of aerosol to vesicle transformation is high with prebiotically plausible lipids, such as decanoic acid and decanol, that were previously shown to be capable of forming growing and dividing vesicles. The high transformation efficiency with 10-carbon lipids in landing solutions is consistent with the surface properties and dynamics of short-chain lipids. Similar processes may be operative today as fatty acids are common constituents of both contemporary aerosols and the sea. Our work highlights a new pathway that may have facilitated the emergence of the Earth’s first cells.
2023
1
Nader, Serge; Baccouche, Alexandre; Connolly, Fiona; Abou-Ghanem, Maya; Styler, Sarah A; Lewis, John D; Pink, Desmond; Mansy, Sheref S
Model atmospheric aerosols convert to cell-sized vesicles upon entry into lipid coated aqueous solution / Nader, Serge; Baccouche, Alexandre; Connolly, Fiona; Abou-Ghanem, Maya; Styler, Sarah A; Lewis, John D; Pink, Desmond; Mansy, Sheref S. - In: ACS EARTH AND SPACE CHEMISTRY. - ISSN 2472-3452. - ELETTRONICO. - 2023, 7:1(2023), pp. 252-259. [10.1021/acsearthspacechem.2c00328]
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