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Baum, D. A.

Publications and source records attributed to Baum, D. A..

2 recordsLinked to original sources

Conditions enabling the persistence of cooperating ribozymes without cellular encapsulation

Explaining the origin of molecular systems composed of cooperating polymer sets that confer both metabolic and information processing functions is a key challenge in origins-of-life research. A related puzzle is the emergence of polymers of sufficient length to confer complex functions such as the RNA-dependent RNA polymerization with proofreading. Addressing these issues using computational models of template-guided replicating polymer systems is generally constrained by the exponential increase in diversity as the length of polymers increases. In this study, inspired by the computer game Tetris(R) and the Polymerase Chain Reaction (PCR) technique, we developed an abstract computational model of cooperative replicating polymer systems that avoids tracking all potential sequences. Using this model, we explored cooperative chemical ecosystems consisting of catalytic polymers conferring functions analogous to kinases, ligases, and mutation inhibitors. We show that prebiotic environments with micro-compartments with local exchanges enable multilevel selection that facilitates the survival of cooperating polymers. The ability of cooperative systems to persist is sensitive to intrinsic properties of catalysts such as catalytic efficiency and extrinsic factors such as dilution rate. These results provide a roadmap for future studies that look not just at persistence but also at the stepwise, de novo emergence of chemical ecosystems with both metabolic and information-processing capabilities.

evolutionary biology↗

Measuring heritability in messy prebiotic chemical systems

A key question in origins-of-life research, is whether heritability, and thus evolution, could have preceded genes. Out-of-equilibrium chemical reaction networks with multiple autocatalytic motifs may provide chemical "memory" and serve as units of heritability, but experimental validation is lacking. We established conditions that may be conducive to the emergence of heritable variation and developed methods to search for heritability and autocatalysis. We prepared a food set (FS) of three organic species, three inorganic salts and pyrite. We conducted a serial dilution experiment where FS was incubated for 24 hours, after which a 20% fraction was transferred into freshly prepared FS that went through the same procedure, repeated for 10 generations. To serve as controls, we also incubated the fresh solutions in each generation. We compared the chemical composition of transfer vials and no-transfer controls using liquid chromatography-mass spectrometry (LCMS), with metrics adapted from ecology and evolutionary biology. While variability was high, focusing on a subset of chemicals with more consistent patterns revealed evidence of heritable variation among vials. Using rule-based chemical reaction network inference, constrained by the LCMS data, we identified a plausible FS-driven chemical reaction network that was found to contain numerous autocatalytic cycles.

evolutionary biology↗