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Belt, K.

Publications and source records attributed to Belt, K..

2 recordsLinked to original sources

Continuous Directed Evolution of a Plant Histidinol Dehydrogenase to Extend Lifespan

Enzyme protein turnover accounts for about half the maintenance energy budget in plants. Slowing turnover - i.e., extending lifespan - of short-lived enzymes is thus a rational strategy to conserve energy and carbon, and raise crop productivity. Arabidopsis histidinol dehydrogenase (HDH) is a short-lived enzyme that can sustain life-shortening damage from its aminoaldehyde reaction intermediate. We used the yeast OrthoRep continuous directed evolution system in a his4{Delta} strain to raise HDH protein abundance (a proxy for lifespan) by selecting for growth rate while tapering histidinol concentration and escalating that of the inhibitor histamine. Improved HDHs carried diverse nonsynonymous mutations and ranged 20-fold in level. Improved HDH performance was associated with higher HDH abundance in some cases and with greater catalytic efficiency or histamine resistance in others. These findings indicate that OrthoRep-based directed evolution can extend enzyme lifespan in vivo in addition to, as expected, altering kinetic properties.

synthetic biology↗

Harnessing Mass Spectrometry-Based Proteomics for Continuous Directed Evolution

Continuous directed evolution is a powerful Synthetic Biology tool to engineer proteins with desired functions in vivo. Mimicking natural evolution, it involves repeated cycles of high-frequency mutagenesis, selection, and replication within platform cells, where the function of the target gene is tightly linked to the host cells fitness. However, cells might escape the selection pressure due to the inherent flexibility of their metabolism, which allows for adaptation. Whole-proteome analysis as well as targeted proteomics offer valuable insights into global and specific cellular changes. They can identify modifications in the target protein and its interactors to help understand its evolution and network integration. Using the continuous evolution of the Arabidopsis methionine synthases AtMS1 and AtMS2 as an example, we demonstrate how mass spectrometry-based proteomics can be applied in CDE, propose specific checkpoints for its integration and illustrate its role in informed decision making.

synthetic biology↗