Molecular insights into human phosphatidylserine synthase 2 and its regulation of SREBP pathways

D Dongyu Li (Department of Molecular Genetics, University of Texas Southwestern Medical Center) H Hongwen Chen (Department of Molecular Genetics, University of Texas Southwestern Medical Center) G Goncalo Vale (Center for Human Nutrition, University of Texas Southwestern Medical Center) N Nadia Elghobashi-Meinhardt A Alexandra Hatton (Department of Molecular Genetics, University of Texas Southwestern Medical Center) S Shunxing Rong (Center for Human Nutrition, University of Texas Southwestern Medical Center) J Jeffrey G. McDonald (Department of Molecular Genetics, University of Texas Southwestern Medical Center) X Xiaochun Li (Institute of Condensed Matter and Nanosciences, Molecular Chemistry, Materials and Catalysis (IMCN/MOST))

Abstract

Homologous proteins share similar sequences, enabling them to work together in cells to support normal physiological functions. Phosphatidylserine synthases 1 and 2 (PSS1 and PSS2) are homologous enzymes that catalyze the synthesis of phosphatidylserine (PS) from different substrates. PSS2 shows a preference for phosphatidylethanolamine (PE) as its substrate, whereas PSS1 can utilize either PE or phosphatidylcholine. Previous studies showed that inhibiting PSS1 promotes SREBP-2 cleavage. Interestingly, despite their homology, our findings reveal that PSS2 exerts an opposing effect on the cleavage of both SREBP-1 and SREBP-2. We resolved the cryo-electron microscopy (cryo-EM) structure of human PSS2 at 3.3 Å resolution. Structural comparison of the catalytic cavities between PSS1 and PSS2 along with molecular dynamics simulations uncovers the molecular details behind the substrate preference of PSS2 for PE. The lipidomic analysis showed that PSS2 deficiency leads to PE accumulation in the endoplasmic reticulum, which has been shown to inhibit the cleavage of sterol regulatory element-binding proteins (SREBPs) in mice. Thus, our findings reveal the intricate network of intracellular phospholipid metabolism and underscore the distinct regulatory roles of homologous proteins in cellular activities.

Article Details

Volume / Issue Vol. 122, Issue 20
Published May 20, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (8)

D

Dongyu Li

Department of Molecular Genetics, University of Texas Southwestern Medical Center

H

Hongwen Chen

Department of Molecular Genetics, University of Texas Southwestern Medical Center

G

Goncalo Vale

Center for Human Nutrition, University of Texas Southwestern Medical Center

N

Nadia Elghobashi-Meinhardt

A

Alexandra Hatton

Department of Molecular Genetics, University of Texas Southwestern Medical Center

S

Shunxing Rong

Center for Human Nutrition, University of Texas Southwestern Medical Center

J

Jeffrey G. McDonald

Department of Molecular Genetics, University of Texas Southwestern Medical Center

X

Xiaochun Li

Institute of Condensed Matter and Nanosciences, Molecular Chemistry, Materials and Catalysis (IMCN/MOST)