CRISPR screens and quantitative proteomics reveal remodeling of the aryl hydrocarbon receptor–driven proteome through PARP7 activity

A Andrii Gorelik (Sir William Dunn School of Pathology, University of Oxford) J Joao A. Paulo C Christina B. Schroeter (Department of Cell Biology, Harvard Medical School) M Melanie Lad (Cancer Research Horizons, Joint AstraZeneca-Cancer Research Horizons Functional Genomics Centre) A Abigail Shurr (Cancer Research Horizons, Joint AstraZeneca-Cancer Research Horizons Functional Genomics Centre) C Chara Mastrokalou (Cancer Research Horizons, Joint AstraZeneca-Cancer Research Horizons Functional Genomics Centre) S Samrah Siddiqi (Sir William Dunn School of Pathology, University of Oxford) O Osamu Suyari (Sir William Dunn School of Pathology, University of Oxford) J John Brognard D David Walter (Cancer Research Horizons, Joint AstraZeneca-Cancer Research Horizons Functional Genomics Centre) J Jason Matthews (Department of Nutrition, Institute of Basic Medical Sciences, University of Oslo) T Timothy M. Palmer (Biomedical Institute for Multimorbidity, Centre for Biomedicine, Hull York Medical School, University of Hull) S Steven P. Gygi I Ivan Ahel (University of Oxford , , ,)

Abstract

PARP7 is an enzyme that uses donor substrate NAD + to attach a single ADP-ribose moiety onto proteins related to immunity, transcription, and cell growth and motility. Despite the importance of PARP7 in these processes, PARP7 signaling networks remain underresearched. Here, we used genome-wide CRISPR screens and multiplex quantitative proteomics in distinct lung cancer cell lines treated with a PARP7 inhibitor to better understand PARP7 molecular functions. We find that manipulating the aryl hydrocarbon receptor (AHR) transcriptional activity mediates PARP7 inhibitor sensitivity and triggers robust changes to the AHR-controlled proteome (AHR-ome). One of the striking features of such AHR-ome remodeling was the downregulation of filamins A and B concurrent with the induction of the corresponding E3 ubiquitin ligase ASB2. We also show that suppressor of cytokine signaling 3 (SOCS3) crosstalks to AHR. Inhibition of PARP7 in SOCS3 knockout cells leads to reduced viability compared to wild-type cells treated with a PARP7 inhibitor. Our results reveal signaling interplay between PARP7, AHR, and SOCS3 and establish an invaluable resource to study the role of PARP7 in the regulation of AHR signaling and innate immunity through its ADP-ribosyl transferase activity.

Article Details

Volume / Issue Vol. 122, Issue 24
Published June 17, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (14)

A

Andrii Gorelik

Sir William Dunn School of Pathology, University of Oxford

J

Joao A. Paulo

C

Christina B. Schroeter

Department of Cell Biology, Harvard Medical School

M

Melanie Lad

Cancer Research Horizons, Joint AstraZeneca-Cancer Research Horizons Functional Genomics Centre

A

Abigail Shurr

Cancer Research Horizons, Joint AstraZeneca-Cancer Research Horizons Functional Genomics Centre

C

Chara Mastrokalou

Cancer Research Horizons, Joint AstraZeneca-Cancer Research Horizons Functional Genomics Centre

S

Samrah Siddiqi

Sir William Dunn School of Pathology, University of Oxford

O

Osamu Suyari

Sir William Dunn School of Pathology, University of Oxford

J

John Brognard

D

David Walter

Cancer Research Horizons, Joint AstraZeneca-Cancer Research Horizons Functional Genomics Centre

J

Jason Matthews

Department of Nutrition, Institute of Basic Medical Sciences, University of Oslo

T

Timothy M. Palmer

Biomedical Institute for Multimorbidity, Centre for Biomedicine, Hull York Medical School, University of Hull

S

Steven P. Gygi

I

Ivan Ahel

University of Oxford , , ,