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Finney, M.

Publications and source records attributed to Finney, M..

2 recordsLinked to original sources

Unobserved Sequence Space Has Many Functional Proteins

The distribution of functional proteins across amino acid sequence space, and the proportion of functional space covered by existing proteins, remains unknown. Illuminating this distribution is integral to understanding protein evolution and advancing protein design. The recent explosion of AI/ML protein design tools presents an opportunity to explore protein sequence space distant from extant proteins, but these tools remain poorly validated. Here, we determine that portions of protein sequence space, despite being unobserved in nature, contains many functional proteins that cannot be predicted accurately in silico. We measure experimental fitness of highly diverse proteins across 3 families and assemble the largest known dataset of diverse, functionally labeled natural protein orthologs and new-to-nature proteins. For each family, we observe many functional, new-to-nature sequences with low amino acid identity to existing orthologs. Sequence-based scoring metrics, especially Potts models and protein language models, provide accurate but inconsistent and highly correlated function predictions. Empirical protein fitness landscapes are rugged, and predictions of function do not consistently capture either the local shape or global trends of the empirical fitness landscapes. Finally, we find extensive functional sequence space between existing proteins in each family, providing experimental support for the hypothesis that natural protein sequences explored by evolution represent a minuscule fraction of all possible functional sequences.

synthetic biology↗

CNC Knitting Micro-Resolution Mosquito Bite Blocking Textiles

Mosquitoes and other biting arthropods transmit diseases worldwide, causing over 700,000 deaths each year, and costing about 3 billion annually for Aedes species alone. These insects also pose a significant threat to agricultural animals. While clothing could provide a simple solution to vector-borne diseases, modern textiles do not effectively block mosquito bites. To address this issue, we have designed three micro-resolution knitted structures, with five adjustable parameters, that can block bites. These designs were integrated into a computer numerical control knitting robot for mass production of bite-blocking garments with minimal human labor. We then quantified the comfort of blocking garments. Our knits enable individuals to protect themselves from insects amidst their day-to-day activities without impacting the environment. One Sentence SummaryWe create micro-resolution mosquito bite blocking knits produced by robotic manufacturing to protect humans against vector-borne disease.

bioengineering↗