Cycling molecular assemblies for Golgi imaging and disruption

W Weiyi Tan (Department of Chemistry) Q Qiuxin Zhang (Department of Chemistry, Brandeis University, 415 South Street, Waltham, Massachusetts 02454, United States) Z Zhiyu Liu (Department of Chemistry, Brandeis University, 415 South St., Waltham, Massachusetts 02454, United States) K Kangqiang Qiu D Divyanshu Mahajan T Thomas Gerton N Noah Copperman E Erica C. Dresselhaus C Chaoshuang Xia (Department of Biochemistry and Cell Biology, Chobanian and Avedisian School of Medicine, Boston University) C Cheng Lin W William Lau (Department of Chemistry, Brandeis University, 415 South Street, Waltham, Massachusetts 02454, United States) M Mikki Lee I Isabela Ashton-Rickardt (Department of Chemistry, Brandeis University, 415 South Street, Waltham, Massachusetts 02454, United States) P Pengyu Hong D Daniela Dinulescu J Jer-Tsong Hsieh A Avital A. Rodal D David M. Loeb R Ronny Drapkin J Jiajie Diao L Lei Lu B Bing Xu

Abstract

Abstract The Golgi apparatus is a central hub for protein trafficking and signaling, yet its rapid imaging and cell-selective disruption remain challenging. Here, we report cycling molecular assemblies (CyMA) for fast Golgi imaging and cell-selective interference. CyMA precursors are acetylated amphiphilic thiopeptides that traverse plasma membrane and are deacetylated by intracellular thioesterases. This exposes thiols that undergo palmitoylation by Golgi-resident palmitoyl acyltransferases utilizing palmitoyl-CoA. The resulting palmitoylated peptides self-assemble into dynamic nanostructures (i.e., CyMA) localized at the Golgi. Their continuous, reversible S -acylation enables near-instantaneous Golgi imaging. Replacing fluorophore with a biphenyl motif promotes CyMA accumulation and disrupts functions such as protein modifications, trafficking, and secretion, leading to cell death. This study establishes dynamic supramolecular assembly as an active and selective strategy for Golgi-targeting, pleiotropically interfering with Golgi functions, which may be applicable to targeting other organelles by utilizing alternative enzyme switches to enable kinetic trapping.

Article Details

Volume / Issue Vol. 17, Issue 1
Published January 28, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (22)

W

Weiyi Tan

Department of Chemistry

Q

Qiuxin Zhang

Department of Chemistry, Brandeis University, 415 South Street, Waltham, Massachusetts 02454, United States

Z

Zhiyu Liu

Department of Chemistry, Brandeis University, 415 South St., Waltham, Massachusetts 02454, United States

K

Kangqiang Qiu

D

Divyanshu Mahajan

T

Thomas Gerton

N

Noah Copperman

E

Erica C. Dresselhaus

C

Chaoshuang Xia

Department of Biochemistry and Cell Biology, Chobanian and Avedisian School of Medicine, Boston University

C

Cheng Lin

W

William Lau

Department of Chemistry, Brandeis University, 415 South Street, Waltham, Massachusetts 02454, United States

M

Mikki Lee

I

Isabela Ashton-Rickardt

Department of Chemistry, Brandeis University, 415 South Street, Waltham, Massachusetts 02454, United States

P

Pengyu Hong

D

Daniela Dinulescu

J

Jer-Tsong Hsieh

A

Avital A. Rodal

D

David M. Loeb

R

Ronny Drapkin

J

Jiajie Diao

L

Lei Lu

B

Bing Xu