A programmable lipid-triggered allosteric site modulates LC3 LIR receptor binding activity

Membrane recruitment is a fundamental regulator of protein function. However, the allosteric mechanisms by which lipid binding controls protein activity remain poorly understood. In autophagy, the ubiquitin-like protein LC3 is lipid-anchored to autophagosomes, where it is essential for receptor recruitment and vesicle formation. While LC3-receptor interactions are structurally well defined, how membrane engagement governs LC3 functional dynamics has remained enigmatic. Here, we uncover that membrane binding triggers a major conformational transition in LC3, exposing functional pockets that are occluded in its cytosolic form. We demonstrate that this shift is mediated by dynamic coupling between the allosteric site (α3-loop5-β3-loop6) and the functional binding pockets. To conclusively test this mechanism, we utilised an ensemble-based protein design strategy guided by molecular dynamics to engineer the allosteric site. From a series of mutants, two variants emerged that stabilized LC3 conformation in either active or inactive state on the membrane. X-ray crystal structures of mutant LC3, biophysical assays, super-resolution microscopy, and TEM confirmed that the activated allosteric site mutant facilitates receptor binding and cargo capture. In contrast, the inactive variant is functionally inert on the membrane. Our work identifies a fundamental lipid-triggered allosteric site in LC3 that is critical for autophagy regulation and broader implications of membrane-dependent reprogrammable protein activities.

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Publication Details

Journal
Nature Communications
Published
2026-08-28
DOI
https://doi.org/10.1038/s41467-026-76697-9
Primary Topic
Autophagy in Disease and Therapy
Type
article
Field-Weighted Citation Impact
0.00

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article

A programmable lipid-triggered allosteric site modulates LC3 LIR receptor binding activity

S C Mathur, Deepanshi Gahlot, Chandrima Gain, Lipi Thukral et al.
Nature Communications
Autophagy in Disease and Therapy
article

A programmable lipid-triggered allosteric site modulates LC3 LIR receptor binding activity

S C Mathur, Deepanshi Gahlot, Chandrima Gain, Lipi Thukral, Debajyoti Das, Niyati Jain, Akanksha Arun, Rajat Singh, B.K. Biswal, Mridul Sharma, Ravi Kant Pal, Jesu Castin, Ajit Kumar
article en

Abstract

Membrane recruitment is a fundamental regulator of protein function. However, the allosteric mechanisms by which lipid binding controls protein activity remain poorly understood. In autophagy, the ubiquitin-like protein LC3 is lipid-anchored to autophagosomes, where it is essential for receptor recruitment and vesicle formation. While LC3-receptor interactions are structurally well defined, how membrane engagement governs LC3 functional dynamics has remained enigmatic. Here, we uncover that membrane binding triggers a major conformational transition in LC3, exposing functional pockets that are occluded in its cytosolic form. We demonstrate that this shift is mediated by dynamic coupling between the allosteric site (α3-loop5-β3-loop6) and the functional binding pockets. To conclusively test this mechanism, we utilised an ensemble-based protein design strategy guided by molecular dynamics to engineer the allosteric site. From a series of mutants, two variants emerged that stabilized LC3 conformation in either active or inactive state on the membrane. X-ray crystal structures of mutant LC3, biophysical assays, super-resolution microscopy, and TEM confirmed that the activated allosteric site mutant facilitates receptor binding and cargo capture. In contrast, the inactive variant is functionally inert on the membrane. Our work identifies a fundamental lipid-triggered allosteric site in LC3 that is critical for autophagy regulation and broader implications of membrane-dependent reprogrammable protein activities.

Nature CommunicationsVol. 17(1)
University of California, Los Angeles (US), Institute of Genomics and Integrative Biology (IN), Ashoka University (IN), National Institute of Immunology (IN), Academy of Scientific and Innovative Research (IN)
Wellcome Trust, Department of Biotechnology, Ministry of Science and Technology, India, Department of Science and Technology, Ministry of Science and Technology, India, The Wellcome Trust DBT India Alliance, National Institute of Immunology
Openalex Percentile: Top 10%
Autophagy in Disease and Therapy
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