TY - JOUR
T1 - Molecular Display of the Animal Meta-Venome for Discovery of Novel Therapeutic Peptides
AU - Hsiao, Meng Hsuan
AU - Miao, Yang
AU - Liu, Zixing
AU - Schütze, Konstantin
AU - Limjunyawong, Nathachit
AU - Chien, Daphne Chun Che
AU - Monteiro, Wayne Denis
AU - Chu, Lee Shin
AU - Morgenlander, William
AU - Jayaraman, Sahana
AU - Jang, Sung Eun
AU - Gray, Jeffrey J.
AU - Zhu, Heng
AU - Dong, Xinzhong
AU - Steinegger, Martin
AU - Larman, H. Benjamin
N1 - Publisher Copyright:
© 2025 THE AUTHORS.
PY - 2025
Y1 - 2025
N2 - Animal venoms, distinguished by their unique structural features and potent bioactivities, represent a vast and relatively untapped reservoir of therapeutic molecules. However, limitations associated with comprehensively constructing and expressing highly complex venom and venom-like molecule libraries have precluded their therapeutic evaluation via high-throughput screening. Here, we developed an innovative computational approach to design a highly diverse library of animal venoms and “metavenoms”. We used programmable M13 hyperphage display to preserve critical disulfide-bonded structures for highly parallelized single-round biopanning with quantitation via high-throughput DNA sequencing. Our approach led to the discovery of Kunitz-type domain containing proteins that target the human itch receptor Mas-related G-protein coupled receptor member X4, which plays a crucial role in itch perception. Deep learning-based structural homology mining identified two endogenous human homologs, tissue factor pathway inhibitor (TFPI), and serine peptidase inhibitor, Kunitz type 2 (SPINT2), which exhibit agonist-dependent potentiation of Mas-related G-protein coupled receptor member X4. Highly multiplexed screening of animal venoms and metavenoms is therefore a promising approach to uncover new drug candidates.
AB - Animal venoms, distinguished by their unique structural features and potent bioactivities, represent a vast and relatively untapped reservoir of therapeutic molecules. However, limitations associated with comprehensively constructing and expressing highly complex venom and venom-like molecule libraries have precluded their therapeutic evaluation via high-throughput screening. Here, we developed an innovative computational approach to design a highly diverse library of animal venoms and “metavenoms”. We used programmable M13 hyperphage display to preserve critical disulfide-bonded structures for highly parallelized single-round biopanning with quantitation via high-throughput DNA sequencing. Our approach led to the discovery of Kunitz-type domain containing proteins that target the human itch receptor Mas-related G-protein coupled receptor member X4, which plays a crucial role in itch perception. Deep learning-based structural homology mining identified two endogenous human homologs, tissue factor pathway inhibitor (TFPI), and serine peptidase inhibitor, Kunitz type 2 (SPINT2), which exhibit agonist-dependent potentiation of Mas-related G-protein coupled receptor member X4. Highly multiplexed screening of animal venoms and metavenoms is therefore a promising approach to uncover new drug candidates.
UR - https://www.scopus.com/pages/publications/85217904938
U2 - 10.1016/j.mcpro.2024.100901
DO - 10.1016/j.mcpro.2024.100901
M3 - Article
C2 - 39746545
AN - SCOPUS:85217904938
SN - 1535-9476
VL - 24
JO - Molecular and Cellular Proteomics
JF - Molecular and Cellular Proteomics
IS - 2
M1 - 100901
ER -