Project Grant R01DK146220
- The National Institute of Diabetes and Digestive and Kidney Diseases awarded The University of Chicago $123,000 on June 16, 2026, under the Diabetes, Digestive, and Kidney Diseases Extramural Research program (CFDA 93.847) to characterize adipocyte heterogeneity and response to metabolic stress. The funded research uses single-nucleus RNA sequencing and a humanized mouse model to investigate how diverse stimuli influence white adipocyte development and specification, with emphasis on...
- The National Institute of Diabetes and Digestive and Kidney Diseases awarded The Washington University $578,846 on February 1, 2026, under the Diabetes, Digestive, and Kidney Diseases Extramural Research program (CFDA 93.847) to investigate brown adipose tissue–derived nidogen-2 as a potential diabetes therapeutic. The research addresses hyperglycemia and hypoglycemia risks in type 1 and advanced type 2 diabetes. Preliminary data show that nidogen-2, a secreted protein isolated from brown...
- The National Institute of Diabetes and Digestive and Kidney Diseases awarded Joslin Diabetes Center, Inc. $868,285 on August 26, 2026, under the Diabetes, Digestive, and Kidney Diseases Extramural Research program (CFDA 93.847) to investigate the mechanistic role of brown fat-derived lipid mediators and their analogs in metabolic health. The project, identified as R01DK146036, focuses on elucidating the signaling and molecular mechanisms through which the linoleic acid metabolite 12,13-DIHOME...
- The National Institute of Diabetes and Digestive and Kidney Diseases awarded the University of California, Berkeley $794,101 on June 5, 2026, to investigate the physiological role and mechanisms of neuritin 1 (NRN1), a novel adipokine regulating insulin sensitivity and glucose metabolism under the Diabetes, Digestive, and Kidney Diseases Extramural Research program (CFDA 93.847). The research examines NRN1, a glycosylphosphatidylinositol-anchored and secreted protein highly enriched in...
- The National Institute of Diabetes and Digestive and Kidney Diseases awarded $1,634,996 to Boston University (Trustees of Boston University, doing business as Boston University Medical Campus) on February 18, 2026, under the Diabetes, Digestive, and Kidney Diseases Extramural Research program (CFDA 93.847) to support research on vasculature and beige remodeling of obese adipose tissue. The research investigates how beige adipocyte recruitment and enhanced angiogenesis can counteract unhealthy...
- The National Institute of Diabetes and Digestive and Kidney Diseases awarded Trustees of Tufts College (doing business as Tufts University School of Medicine) $232,000 on March 12, 2026, under the Diabetes, Digestive, and Kidney Diseases Extramural Research program (CFDA 93.847) to investigate the role of adipocyte interferon regulatory factor 8 (IRF8) in adipocyte and systemic metabolism and diet-induced obesity. The funded research will define the specific role of IRF8 in white and brown...
- The National Institute of Diabetes and Digestive and Kidney Diseases awarded the University of Illinois $786,728 on June 1, 2026, under the Diabetes, Digestive, and Kidney Diseases Extramural Research program (CFDA 93.847) to characterize gut microbiota-derived metabolic signaling pathways that regulate thermogenic fat cell formation and energy homeostasis in obesity. The funded research investigates 3-phenylpropionic acid (3-PPA), a gut microbiota-derived metabolite, as a promoter of beige...
- The National Institute of Diabetes and Digestive and Kidney Diseases awarded The University of Texas Southwestern Medical Center $295,649 on September 15, 2025, under the Diabetes, Digestive, and Kidney Diseases Extramural Research program (CFDA 93.847) to investigate adipocyte FGF1 signaling in systemic metabolism. The research examines fibroblast growth factor 1 (FGF1) as a potential lipid-lowering therapeutic target for hyperlipidemia and related metabolic disorders. Preliminary studies...
- The National Institute of Diabetes and Digestive and Kidney Diseases awarded Massachusetts Institute of Technology $149,190 on December 11, 2025, under the Diabetes, Digestive, and Kidney Diseases Extramural Research program (CFDA 93.847) to investigate the ferrostatic role of adipose tissue macrophages in iron homeostasis and metabolic regulation. The research elucidates tissue-level iron handling functions of vasculature-associated macrophages (VAMs) by identifying primary iron uptake pathways...
- The National Institute of Diabetes and Digestive and Kidney Diseases awarded Cincinnati Children's Hospital Medical Center $771,701 on June 1, 2026, under the Diabetes, Digestive, and Kidney Diseases Extramural Research program (CFDA 93.847) to delineate the impact of beige adipocytes in whole-body energy metabolism. The funded research addresses a gap in understanding adipose tissue biology by investigating the role of beige adipocytes in energy expenditure and metabolic health. Using a novel...
The National Institute of Diabetes and Digestive and Kidney Diseases awarded the University of California, Berkeley $782,184 on August 5, 2026, under the Diabetes, Digestive, and Kidney Diseases Extramural Research program (CFDA 93.847) to investigate the metabolic role of FAM3D protein in brown adipose tissue thermogenesis and whole-body metabolism. The research addresses obesity and diabetes as global health crises by examining how FAM3D functions as a negative regulator of brown adipose tissue thermogenesis and mitochondrial function. Human genetic studies identify FAM3D as a putatively causal protein for type 2 diabetes. The research team will define FAM3D's physiological role through three specific aims: characterizing FAM3D's role in brown adipose tissue thermogenesis and mitochondrial function using mouse and human brown adipocytes; dissecting how FAM3D-FPR2 signaling suppresses beta-adrenergic activation and induces mitochondrial stress responses; and determining the physiological and metabolic roles of brown adipose tissue-specific FAM3D knockdown. Preliminary data show that brown adipose tissue-specific FAM3D knockdown enhances cold tolerance, energy expenditure, insulin sensitivity, and glucose homeostasis, while FAM3D overexpression produces opposite effects. The research proposes that FAM3D acts through formyl peptide receptor 2, a G-protein-coupled receptor linked to inhibitory signaling. Performance occurs at Berkeley, California, with a period of performance through May 31, 2030.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $782.2k | 8/5/26 |