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Updated: Jul 22, 2025

Investigation of Beige Fat Biology and Metabolism Using the CRISPR SunTag-p65-HSF1 Activation System
Published on: January 6, 2023
Crosstalk between corepressor NRIP1 and cAMP signaling on adipocyte thermogenic programming
Emmanouela Tsagkaraki1, Adilson Guilherme1, Sarah M Nicoloro1
1Program in Molecular Medicine, University of Massachusetts Chan Medical School, Worcester, MA 01605, USA.
Objectives:
Nuclear receptor interacting protein 1 (NRIP1) suppresses energy expenditure via repression of nuclear receptors, and its depletion markedly elevates uncoupled respiration in mouse and human adipocytes. We tested whether NRIP1 deficient adipocytes implanted into obese mice would enhance whole body metabolism. Since β-adrenergic signaling through cAMP strongly promotes adipocyte thermogenesis, we tested whether the effects of NRIP1 knock-out (NRIP1KO) require the cAMP pathway.
Methods:
NRIP1KO adipocytes were implanted in recipient high-fat diet (HFD) fed mice and metabolic cage studies conducted. The Nrip1 gene was disrupted by CRISPR in primary preadipocytes isolated from control vs adipose selective GsαKO (cAdGsαKO) mice prior to differentiation to adipocytes. Protein kinase A inhibitor was also used.
Results:
Implanting NRIP1KO adipocytes into HFD fed mice enhanced whole-body glucose tolerance by increasing insulin sensitivity, reducing adiposity, and enhancing energy expenditure in the recipients. NRIP1 depletion in both control and GsαKO adipocytes was equally effective in upregulating uncoupling protein 1 (UCP1) and adipocyte beiging, while β-adrenergic signaling by CL 316,243 was abolished in GsαKO adipocytes. Combining NRIP1KO with CL 316,243 treatment synergistically increased Ucp1 gene expression and increased the adipocyte subpopulation responsive to beiging. Estrogen-related receptor α (ERRα) was dispensable for UCP1 upregulation by NRIPKO.
Conclusions:
The thermogenic effect of NRIP1 depletion in adipocytes causes systemic enhancement of energy expenditure when such adipocytes are implanted into obese mice. Furthermore, NRIP1KO acts independently but cooperatively with the cAMP pathway in mediating its effect on adipocyte beiging.
Insights
Depleting nuclear receptor interacting protein 1 (NRIP1) in adipocytes enhances whole-body metabolism and energy expenditure when implanted into obese mice. This effect is independent but cooperative with the cAMP pathway for adipocyte beiging.
Area of Science:
- Metabolic regulation
- Adipocyte biology
- Obesity research
Background:
- Nuclear receptor interacting protein 1 (NRIP1) regulates energy expenditure by suppressing nuclear receptors.
- NRIP1 depletion increases uncoupled respiration in adipocytes, suggesting a role in thermogenesis.
Purpose of the Study:
- To investigate if NRIP1-deficient adipocytes enhance whole-body metabolism in obese mice.
- To determine if the effects of NRIP1 knockout (NRIP1KO) on adipocyte thermogenesis depend on the cAMP pathway.
Main Methods:
- NRIP1KO adipocytes were implanted into high-fat diet (HFD)-fed recipient mice.
- Gene disruption of Nrip1 was performed using CRISPR in adipocytes derived from control and GsαKO mice.
- Metabolic cage studies and pharmacological interventions (protein kinase A inhibitor, CL 316,243) were employed.
Main Results:
- Implantation of NRIP1KO adipocytes improved glucose tolerance, reduced adiposity, and increased energy expenditure in recipient mice.
- NRIP1 depletion upregulated uncoupling protein 1 (UCP1) and adipocyte beiging independently of the cAMP pathway.
- Combining NRIP1KO with β-adrenergic stimulation synergistically enhanced Ucp1 expression and beiging.
Conclusions:
- NRIP1 depletion in adipocytes promotes systemic energy expenditure when transferred to obese hosts.
- NRIP1KO's thermogenic effects are independent yet cooperative with the cAMP pathway in adipocyte beiging.
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