The Hot Spring Hypothesis for an Origin of Life
Гипотеза горячих источников о происхождении жизни
2019-12-16
SCID: 54.1/yf39ddtg
Discuss with AI
hot spring origin of lifeprogenoteprotocellsstromatoliteswet-dry cycles
Figures from the paper
Abstract (AI)
We present a testable hypothesis related to an origin of life on land in which fluctuating volcanic hot spring pools play a central role. The hypothesis is based on experimental evidence that lipid-encapsulated polymers can be synthesized by cycles of hydration and dehydration to form protocells. Drawing on metaphors from the bootstrapping of a simple computer operating system, we show how protocells cycling through wet, dry, and moist phases will subject polymers to combinatorial selection and draw structural and catalytic functions out of initially random sequences, including structural stabilization, pore formation, and primitive metabolic activity. We propose that protocells aggregating into a hydrogel in the intermediate moist phase of wet-dry cycles represent a primitive progenote system. Progenote populations can undergo selection and distribution, construct niches in new environments, and enable a sharing network effect that can collectively evolve them into the first microbial communities. Laboratory and field experiments testing the first steps of the scenario are summarized. The scenario is then placed in a geological setting on the early Earth to suggest a plausible pathway from life's origin in chemically optimal freshwater hot spring pools to the emergence of microbial communities tolerant to more extreme conditions in dilute lakes and salty conditions in marine environments. A continuity is observed for biogenesis beginning with simple protocell aggregates, through the transitional form of the progenote, to robust microbial mats that leave the fossil imprints of stromatolites so representative in the rock record. A roadmap to future testing of the hypothesis is presented. We compare the oceanic vent with land-based pool scenarios for an origin of life and explore their implications for subsequent evolution to multicellular life such as plants. We conclude by utilizing the hypothesis to posit where life might also have emerged in habitats such as Mars or Saturn's icy moon Enceladus. "To postulate one fortuitously catalyzed reaction, perhaps catalyzed by a metal ion, might be reasonable, but to postulate a suite of them is to appeal to magic." -Leslie Orgel.
Key Findings
1
Experimental evidence indicates that hydration–dehydration cycles can synthesize lipid-encapsulated polymers and generate protocells.
2
Laboratory and field experiments are summarized, and a roadmap is provided for testing the hypothesis and comparing terrestrial pools with oceanic vents.
3
Protocells aggregating into hydrogels during moist phases could form primitive progenote populations capable of selection, niche construction, and communal evolution.
4
The paper proposes a testable land-based origin-of-life hypothesis centered on fluctuating volcanic hot spring pools.
5
The proposed evolutionary continuity runs from protocell aggregates through progenotes to microbial mats, including stromatolite-forming communities.
6
The scenario identifies freshwater hot spring pools as chemically favorable settings and outlines a pathway toward tolerance of dilute-lake and marine conditions.
7
Wet–dry cycling may drive combinatorial selection among initially random polymers, producing structural stabilization, pore formation, and primitive metabolic functions.
Research Object
fluctuating volcanic hot spring pools on early Earth and the protocell/progenote systems forming within their wet–dry cycles
Research Subject
the origin and early evolution of life through wet–dry cycling, combinatorial selection, functional emergence in protocells, and their transition to microbial communities
Publication Details
Publication Date
2019-12-16
Journal
Publisher
ISSN
Open access PDF
Access Type
Author Information
Download PDF
Subscribe to digest