Anti-CRISPR-mediated continuous directed evolution of CRISPR-Cas9 in human cells

A Andrew L. Sabol (Department of Chemistry, Massachusetts Institute of Technology) A Amanuella A. Mengiste (Department of Chemistry, Massachusetts Institute of Technology) P Prashant Singh (Ames National Laboratory) V Vedagopuram Sreekanth (Chemical Biology and Therapeutics Science) S Samuel J. Hendel (Department of Chemistry, Massachusetts Institute of Technology) M Minh Thuan Nguyen Tran (Department of Chemistry, Massachusetts Institute of Technology) A Anton M. Barybin (Department of Chemistry, Massachusetts Institute of Technology) S Santosh Chaudhary (Broad Institute of Massachusetts Institute of Technology and Harvard) R Ra’Mal M. Harris (Department of Chemistry, Massachusetts Institute of Technology) K Kristi E. Liivak (Department of Chemistry, Massachusetts Institute of Technology) Z Zachary C. Severance (Broad Institute of Massachusetts Institute of Technology and Harvard) C Cale M. Locicero (Department of Chemistry, Massachusetts Institute of Technology) K Karishma Kailass (Broad Institute of Massachusetts Institute of Technology and Harvard) C Chaiheon Lee (Broad Institute of Massachusetts Institute of Technology and Harvard) L Lucy Qinghua Xu (Broad Institute of Massachusetts Institute of Technology and Harvard) V Vincent L. Butty A Amit Choudhary (Chemical Biology and Therapeutics Science) M Matthew D. Shoulders

Abstract

Engineering CRISPR-Cas systems for improved or altered function is critical to both research and therapeutic applications. Unfortunately, most optimization, especially directed evolution in bacterial hosts, fails to capture the functional requirements of the complex mammalian cellular milieu, where activity is usually required. Robust strategies to enable continuous directed evolution of genome-targeting agents directly in human cells remain lacking. Here, we introduce CRISPR-MACE (Mammalian cell-enabled Adenovirus-assisted Continuous Evolution) as a foundational technology to address this need. CRISPR-MACE integrates virus-based continuous evolution with anti-CRISPR-based tunable selection to generate Streptococcus pyogenes Cas9 variants with both increased and decreased DNA binding capacity and nearly 1,000-fold-enhanced resistance to AcrIIA4, the strongest known inhibitor of SpCas9. Notably, across independent evolution campaigns, the same Cas9 gatekeeper mutation reproducibly emerged first, enabling subsequent adaptive steps along two interdependent axes of Cas9 function. In addition to advancing CRISPR technologies, this work establishes key principles and synthetic circuits for continuously evolving CRISPR-Cas systems directly in human cells.

Article Details

Volume / Issue Vol. 123, Issue 22
Published June 02, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (18)

A

Andrew L. Sabol

Department of Chemistry, Massachusetts Institute of Technology

A

Amanuella A. Mengiste

Department of Chemistry, Massachusetts Institute of Technology

P

Prashant Singh

Ames National Laboratory

V

Vedagopuram Sreekanth

Chemical Biology and Therapeutics Science

S

Samuel J. Hendel

Department of Chemistry, Massachusetts Institute of Technology

M

Minh Thuan Nguyen Tran

Department of Chemistry, Massachusetts Institute of Technology

A

Anton M. Barybin

Department of Chemistry, Massachusetts Institute of Technology

S

Santosh Chaudhary

Broad Institute of Massachusetts Institute of Technology and Harvard

R

Ra’Mal M. Harris

Department of Chemistry, Massachusetts Institute of Technology

K

Kristi E. Liivak

Department of Chemistry, Massachusetts Institute of Technology

Z

Zachary C. Severance

Broad Institute of Massachusetts Institute of Technology and Harvard

C

Cale M. Locicero

Department of Chemistry, Massachusetts Institute of Technology

K

Karishma Kailass

Broad Institute of Massachusetts Institute of Technology and Harvard

C

Chaiheon Lee

Broad Institute of Massachusetts Institute of Technology and Harvard

L

Lucy Qinghua Xu

Broad Institute of Massachusetts Institute of Technology and Harvard

V

Vincent L. Butty

A

Amit Choudhary

Chemical Biology and Therapeutics Science

M

Matthew D. Shoulders