Optimizing multifunctional fluorescent ligands for intracellular labeling

P Pratik Kumar (Janelia Research Campus, HHMI) J Jason D. Vevea (Neuronal Cell Biology Division, Department of Developmental Neurobiology, St. Jude Children’s Research Hospital) A Ariana N. Tkachuk (Janelia Research Campus, HHMI) K Kirby R. Campbell (Neuronal Cell Biology Division, Department of Developmental Neurobiology, St. Jude Children’s Research Hospital) E Emma T. Watson A Anthony X. Ayala (Janelia Research Campus, HHMI) J Jonathan B. Grimm (Janelia Research Campus, Howard Hughes Medical Institute, Ashburn, VA, USA.) E Edwin R. Chapman (Howard Hughes Medical Institute, Department of Neuroscience) D David J. Solecki (Neuronal Cell Biology Division, Department of Developmental Neurobiology, St. Jude Children’s Research Hospital) L Luke D. Lavis

Abstract

Enzyme-based self-labeling tags enable the covalent attachment of synthetic molecules to proteins inside living cells. A frontier of this field is designing cell-permeable multifunctional ligands that contain fluorophores in combination with affinity tags or pharmacological agents. This is challenging since attachment of additional chemical moieties onto fluorescent ligands can adversely affect membrane permeability. To address this problem, we examined the chemical properties of rhodamine-based self-labeling tag ligands through the lens of medicinal chemistry. We found that the lactone–zwitterion equilibrium constant ( K L–Z ) of rhodamines inversely correlates with their distribution coefficients (log D 7.4 ), suggesting that ligands based on dyes exhibiting low K L–Z and high log D 7.4 values, such as Si-rhodamines, would efficiently enter cells. We designed cell-permeable multifunctional HaloTag ligands with a biotin moiety to purify mitochondria or a JQ1 appendage to translocate BRD4 within the nucleus. We found that translocation of BRD4 to constitutive heterochromatin in cells leads to apparent increases in transcriptional activity. These fluorescent reagents enable affinity capture and translocation of intracellular proteins in living cells, and our general design concepts will facilitate the design of multifunctional chemical tools for biology.

Article Details

Volume / Issue Vol. 122, Issue 44
Published November 04, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (10)

P

Pratik Kumar

Janelia Research Campus, HHMI

J

Jason D. Vevea

Neuronal Cell Biology Division, Department of Developmental Neurobiology, St. Jude Children’s Research Hospital

A

Ariana N. Tkachuk

Janelia Research Campus, HHMI

K

Kirby R. Campbell

Neuronal Cell Biology Division, Department of Developmental Neurobiology, St. Jude Children’s Research Hospital

E

Emma T. Watson

A

Anthony X. Ayala

Janelia Research Campus, HHMI

J

Jonathan B. Grimm

Janelia Research Campus, Howard Hughes Medical Institute, Ashburn, VA, USA.

E

Edwin R. Chapman

Howard Hughes Medical Institute, Department of Neuroscience

D

David J. Solecki

Neuronal Cell Biology Division, Department of Developmental Neurobiology, St. Jude Children’s Research Hospital

L

Luke D. Lavis