TY - JOUR
T1 - Cell-autonomous innate immunity by proteasome-derived defence peptides
AU - Goldberg, Karin
AU - Lobov, Arseniy
AU - Antonello, Paola
AU - Shmueli, Merav D.
AU - Yakir, Idan
AU - Weizman, Tal
AU - Ulman, Adi
AU - Sheban, Daoud
AU - Laser, Einav
AU - Kramer, Matthias P.
AU - Shteinvil, Ronen
AU - Chen, Guoyun
AU - Ibraheem, Angham
AU - Sysoeva, Vera
AU - Fishbain-Yoskovitz, Vered
AU - Mohapatra, Gayatree
AU - Abramov, Anat
AU - Shimshi, Sandy
AU - Ogneva, Kseniia
AU - Nandy, Madhurima
AU - Amidror, Sivan
AU - Bootz-Maoz, Hadar
AU - Kuo, Shanny H.
AU - Dezorella, Nili
AU - Kacen, Assaf
AU - Javitt, Aaron
AU - Lau, Gee W.
AU - Yissachar, Nissan
AU - Hayouka, Zvi
AU - Merbl, Yifat
N1 - We thank the members of the Merbl laboratory for their support, J. DeMartino and A. Erez for critical reading of the manuscript, E. Zisman, R. Straussman, A. Savidor, Y. Levin\u00A0and B. Dassa\u00A0for their support and advice. The research was supported by the European Research Council (ERC) under the European Union\u2019s Horizon Europe research and innovation program (grant agreement no. 101045613) and the Israel Science Foundation (grant no. 2237/23). Y.M. is a CRI Lloyd J. Old STAR (CRl5602), a CRI/Israel Cancer Research Fund Technology Impact Award recipient (CRI5398) and a Cancer Research Institute/Israel Cancer Research Fund CLIP Grant (CRI4351). The Merbl laboratory is supported by Dr. Barry Sherman Institute for Medicinal Chemistry; Moross Integrated Cancer Center; EKARD Institute for Cancer Diagnosis Research; Dr. Gilbert S. Omenn and Martha A. Darling Weizmann Institute \u2013 Schneider Hospital Fund for Clinical Breakthroughs through Scientific Collaborations. A.L. is supported by the Fellowship of the Center for Integration in Science, Israel Ministry of Aliyah and Integration, P.A. is supported by a Sergio Lombroso Postdoctoral Fellowship and K.G. and R.S. are supported by Clinical Co-Mentoring fellowships through the\u00A0Moross Integrated Cancer Center.
We thank the members of the Merbl laboratory for their support, J.\u2009DeMartino and A.\u2009Erez for critical reading of the manuscript, E.\u2009Zisman, R.\u2009Straussman, A.\u2009Savidor, Y.\u2009Levin and B.\u2009Dassa for their support and advice. The research was supported by the European Research Council (ERC) under the European Union\u2019s Horizon Europe research and innovation program (grant agreement no. 101045613) and the Israel Science Foundation (grant no. 2237/23). Y.M. is a CRI Lloyd J.\u2009Old STAR (CRl5602), a CRI/Israel Cancer Research Fund Technology Impact Award recipient (CRI5398) and a Cancer Research Institute/Israel Cancer Research Fund CLIP Grant (CRI4351). The Merbl laboratory is supported by Dr. Barry Sherman Institute for Medicinal Chemistry; Moross Integrated Cancer Center; EKARD Institute for Cancer Diagnosis Research; Dr. Gilbert S. Omenn and Martha A. Darling Weizmann Institute \u2013 Schneider Hospital Fund for Clinical Breakthroughs through Scientific Collaborations. A.L. is supported by the Fellowship of the Center for Integration in Science, Israel Ministry of Aliyah and Integration, P.A. is supported by a Sergio Lombroso Postdoctoral Fellowship and K.G. and R.S. are supported by Clinical Co-Mentoring fellowships through the Moross Integrated Cancer Center.
PY - 2025/3/27
Y1 - 2025/3/27
N2 - For decades, antigen presentation on major histocompatibility complex class I for T cell-mediated immunity has been considered the primary function of proteasome-derived peptides1,2. However, whether the products of proteasomal degradation play additional parts in mounting immune responses remains unknown. Antimicrobial peptides serve as a first line of defence against invading pathogens before the adaptive immune system responds. Although the protective function of antimicrobial peptides across numerous tissues is well established, the cellular mechanisms underlying their generation are not fully understood. Here we uncover a role for proteasomes in the constitutive and bacterial-induced generation of defence peptides that impede bacterial growth both in vitro and in vivo by disrupting bacterial membranes. In silico prediction of proteome-wide proteasomal cleavage identified hundreds of thousands of potential proteasome-derived defence peptides with cationic properties that may be generated en route to degradation to act as a first line of defence. Furthermore, bacterial infection induces changes in proteasome composition and function, including PSME3 recruitment and increased tryptic-like cleavage, enhancing antimicrobial activity. Beyond providing mechanistic insights into the role of proteasomes in cell-autonomous innate immunity, our study suggests that proteasome-cleaved peptides may have previously overlooked functions downstream of degradation. From a translational standpoint, identifying proteasome-derived defence peptides could provide an untapped source of natural antibiotics for biotechnological applications and therapeutic interventions in infectious diseases and immunocompromised conditions.
AB - For decades, antigen presentation on major histocompatibility complex class I for T cell-mediated immunity has been considered the primary function of proteasome-derived peptides1,2. However, whether the products of proteasomal degradation play additional parts in mounting immune responses remains unknown. Antimicrobial peptides serve as a first line of defence against invading pathogens before the adaptive immune system responds. Although the protective function of antimicrobial peptides across numerous tissues is well established, the cellular mechanisms underlying their generation are not fully understood. Here we uncover a role for proteasomes in the constitutive and bacterial-induced generation of defence peptides that impede bacterial growth both in vitro and in vivo by disrupting bacterial membranes. In silico prediction of proteome-wide proteasomal cleavage identified hundreds of thousands of potential proteasome-derived defence peptides with cationic properties that may be generated en route to degradation to act as a first line of defence. Furthermore, bacterial infection induces changes in proteasome composition and function, including PSME3 recruitment and increased tryptic-like cleavage, enhancing antimicrobial activity. Beyond providing mechanistic insights into the role of proteasomes in cell-autonomous innate immunity, our study suggests that proteasome-cleaved peptides may have previously overlooked functions downstream of degradation. From a translational standpoint, identifying proteasome-derived defence peptides could provide an untapped source of natural antibiotics for biotechnological applications and therapeutic interventions in infectious diseases and immunocompromised conditions.
UR - https://www.scopus.com/pages/publications/86000322658
UR - https://www.scopus.com/pages/publications/86000322658#tab=citedBy
U2 - 10.1038/s41586-025-08615-w
DO - 10.1038/s41586-025-08615-w
M3 - Article
C2 - 40044870
AN - SCOPUS:86000322658
SN - 0028-0836
VL - 639
SP - 1032
EP - 1041
JO - Nature
JF - Nature
IS - 8056
ER -