Lysosomal reduced thiols are essential for mouse embryonic development

C Charles H. Adelmann (Cutaneous Biology Research Center, Department of Dermatology, Massachusetts General Hospital) A Avanthika Venkatachalam (Cutaneous Biology Research Center, Department of Dermatology, Massachusetts General Hospital) L Lingjuan Huang (Cutaneous Biology Research Center, Department of Dermatology, Massachusetts General Hospital) M Michelle Liu (Cutaneous Biology Research Center, Department of Dermatology, Massachusetts General Hospital) S Sharon Germana (Cutaneous Biology Research Center, Department of Dermatology, Massachusetts General Hospital) S Stefan A. Harry P Paul C. Rosen (Department of Neurobiology, Harvard Medical School) J Joshua Herron (Cutaneous Biology Research Center, Department of Dermatology, Massachusetts General Hospital) P Pei-Chieh Tien L Liron Bar-Peled D David M. Sabatini D David E. Fisher

Abstract

While it has been appreciated for decades that lysosomes can import cysteine, its significance for whole-organism physiology has remained uncertain. Recent work identified MFSD12 as a transmembrane protein required for cysteine import into lysosomes (and melanosomes), enabling genetic interrogation of this pathway. Here, we show that Mfsd12 knockout mice die between embryonic days 10.5 and 12.5, indicating that MFSD12 is essential for organogenesis. Mfsd12 loss results in the expression of genes involved in cellular stress and thiol metabolism and likely disproportionately affects the erythroid, myeloid, and neuronal lineages. Within lysosomes, imported cysteine is largely oxidized to cystine, which is exported to the cytosol by the cystinosin (CTNS) transporter. However, unlike Mfsd12 , loss of Ctns is compatible with viability, suggesting that the essential role of MFSD12 lies not in supplying cystine to the cytosol, but in providing reduced cysteine within the lysosomal lumen. Supporting this model, maternal treatment with cysteamine—a lysosome-penetrant thiol—rescued the development of Mfsd12 knockout embryos, yielding viable adult offspring. These findings establish lysosomal thiol import as a critical metabolic pathway and provide genetic tools to further clarify its physiological and biochemical roles.

Article Details

Volume / Issue Vol. 122, Issue 36
Published September 09, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (12)

C

Charles H. Adelmann

Cutaneous Biology Research Center, Department of Dermatology, Massachusetts General Hospital

A

Avanthika Venkatachalam

Cutaneous Biology Research Center, Department of Dermatology, Massachusetts General Hospital

L

Lingjuan Huang

Cutaneous Biology Research Center, Department of Dermatology, Massachusetts General Hospital

M

Michelle Liu

Cutaneous Biology Research Center, Department of Dermatology, Massachusetts General Hospital

S

Sharon Germana

Cutaneous Biology Research Center, Department of Dermatology, Massachusetts General Hospital

S

Stefan A. Harry

P

Paul C. Rosen

Department of Neurobiology, Harvard Medical School

J

Joshua Herron

Cutaneous Biology Research Center, Department of Dermatology, Massachusetts General Hospital

P

Pei-Chieh Tien

L

Liron Bar-Peled

D

David M. Sabatini

D

David E. Fisher