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Gayen, A. K.

Publications and source records attributed to Gayen, A. 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↗

Mirages in continuous directed enzyme evolution: A cautionary case study with plantized bacterial THI4 enzymes

Continuous directed evolution (CDE) improves enzyme characteristics by hypermutating the enzyme gene in vivo in a microbial platform, linking enzyme activity to growth, and selecting for growth rate. Combined with genome editing, CDE can expand the gene pool for plant breeding. THI4 enzymes, essential for thiamin synthesis, are ideal targets for plant CDE. Plant THI4s are inefficient; their replacement by efficient bacterial THI4s could boost biomass yield by up to 4%. However, bacterial THI4s are O2-sensitive and unsuited to plants. Previous CDE campaigns in the yeast OrthoRep system adapted bacterial THI4s for plant-like conditions, achieving success with Mucinivorans hirudinis THI4 (MhTHI4), which acquired beneficial mutations that improved growth. Here, we increased selection pressure on MhTHI4 by reducing its expression, leading to faster-growing populations with new nonsynonymous and synonymous mutations. Surprisingly, the synonymous mutations appeared largely responsible for the growth rate improvements, providing a cautionary example for other OrthoRep CDE projects.

synthetic biology↗