Salt-inducible kinase inhibition promotes the adipocyte thermogenic program and adipose tissue browning. 2023

Fubiao Shi, and Flaviane de Fatima Silva, and Dianxin Liu, and Hari U Patel, and Jonathan Xu, and Wei Zhang, and Clara Türk, and Marcus Krüger, and Sheila Collins
Division of Cardiovascular Medicine, Department of Medicine, Vanderbilt University Medical Center, Nashville, TN 37232, USA. Electronic address: fubiao.shi@vumc.org.

Norepinephrine stimulates the adipose tissue thermogenic program through a β-adrenergic receptor (βAR)-cyclic adenosine monophosphate (cAMP)-protein kinase A (PKA) signaling cascade. We discovered that a noncanonical activation of the mechanistic target of rapamycin complex 1 (mTORC1) by PKA is required for the βAR-stimulation of adipose tissue browning. However, the downstream events triggered by PKA-phosphorylated mTORC1 activation that drive this thermogenic response are not well understood. We used a proteomic approach of Stable Isotope Labeling by/with Amino acids in Cell culture (SILAC) to characterize the global protein phosphorylation profile in brown adipocytes treated with the βAR agonist. We identified salt-inducible kinase 3 (SIK3) as a candidate mTORC1 substrate and further tested the effect of SIK3 deficiency or SIK inhibition on the thermogenic gene expression program in brown adipocytes and in mouse adipose tissue. SIK3 interacts with RAPTOR, the defining component of the mTORC1 complex, and is phosphorylated at Ser884 in a rapamycin-sensitive manner. Pharmacological SIK inhibition by a pan-SIK inhibitor (HG-9-91-01) in brown adipocytes increases basal Ucp1 gene expression and restores its expression upon blockade of either mTORC1 or PKA. Short-hairpin RNA (shRNA) knockdown of Sik3 augments, while overexpression of SIK3 suppresses, Ucp1 gene expression in brown adipocytes. The regulatory PKA phosphorylation domain of SIK3 is essential for its inhibition. CRISPR-mediated Sik3 deletion in brown adipocytes increases type IIa histone deacetylase (HDAC) activity and enhances the expression of genes involved in thermogenesis such as Ucp1, Pgc1α, and mitochondrial OXPHOS complex protein. We further show that HDAC4 interacts with PGC1α after βAR stimulation and reduces lysine acetylation in PGC1α. Finally, a SIK inhibitor well-tolerated in vivo (YKL-05-099) can stimulate the expression of thermogenesis-related genes and browning of mouse subcutaneous adipose tissue. Taken together, our data reveal that SIK3, with the possible contribution of other SIKs, functions as a phosphorylation switch for β-adrenergic activation to drive the adipose tissue thermogenic program and indicates that more work to understand the role of the SIKs is warranted. Our findings also suggest that maneuvers targeting SIKs could be beneficial for obesity and related cardiometabolic disease.

UI MeSH Term Description Entries
D011943 Receptors, Adrenergic, beta One of two major pharmacologically defined classes of adrenergic receptors. The beta adrenergic receptors play an important role in regulating CARDIAC MUSCLE contraction, SMOOTH MUSCLE relaxation, and GLYCOGENOLYSIS. Adrenergic beta-Receptor,Adrenergic beta-Receptors,Receptors, beta-Adrenergic,beta Adrenergic Receptor,beta-Adrenergic Receptor,beta-Adrenergic Receptors,Receptor, Adrenergic, beta,Adrenergic Receptor, beta,Adrenergic beta Receptor,Adrenergic beta Receptors,Receptor, beta Adrenergic,Receptor, beta-Adrenergic,Receptors, beta Adrenergic,beta Adrenergic Receptors,beta-Receptor, Adrenergic,beta-Receptors, Adrenergic
D000071248 Peroxisome Proliferator-Activated Receptor Gamma Coactivator 1-alpha A transcriptional co-activator for NUCLEAR RECEPTORS. It is characterized by an N-terminal LxxLL sequence, a region that interacts with PPAR GAMMA, and a C-terminal RNA RECOGNITION MOTIF. It increases expression of MITOCHONDRIAL UNCOUPLING PROTEIN to regulate genes involved in metabolic reprogramming in response to dietary restriction and the integration of CIRCADIAN RHYTHMS with ENERGY METABOLISM. PGC-1-alpha Protein,PPARGC-1-alpha Protein,PPARGC1a Protein,PGC 1 alpha Protein,PPARGC 1 alpha Protein,Peroxisome Proliferator Activated Receptor Gamma Coactivator 1 alpha
D000076222 Mechanistic Target of Rapamycin Complex 1 An evolutionarily conserved multiprotein complex that functions as a cellular energy sensor and regulator of protein synthesis for cell growth and proliferation. It consists of TOR SERINE-THREONINE KINASES; REGULATORY-ASSOCIATED PROTEIN OF MTOR (RAPTOR); MLST8 PROTEIN; and AKT1 substrate 1 protein. The activity of the complex is regulated by SIROLIMUS; INSULIN; GROWTH FACTORS; PHOSPHATIDIC ACIDS; some amino acids or amino acid derivatives, and OXIDATIVE STRESS. TOR Complex 1,TORC1,Target of Rapamycin Complex 1,mTORC1,mTORC1 Complex,Complex, mTORC1
D000273 Adipose Tissue Specialized connective tissue composed of fat cells (ADIPOCYTES). It is the site of stored FATS, usually in the form of TRIGLYCERIDES. In mammals, there are two types of adipose tissue, the WHITE FAT and the BROWN FAT. Their relative distributions vary in different species with most adipose tissue being white. Fatty Tissue,Body Fat,Fat Pad,Fat Pads,Pad, Fat,Pads, Fat,Tissue, Adipose,Tissue, Fatty
D000818 Animals Unicellular or multicellular, heterotrophic organisms, that have sensation and the power of voluntary movement. Under the older five kingdom paradigm, Animalia was one of the kingdoms. Under the modern three domain model, Animalia represents one of the many groups in the domain EUKARYOTA. Animal,Metazoa,Animalia
D017346 Protein Serine-Threonine Kinases A group of enzymes that catalyzes the phosphorylation of serine or threonine residues in proteins, with ATP or other nucleotides as phosphate donors. Protein-Serine-Threonine Kinases,Serine-Threonine Protein Kinase,Serine-Threonine Protein Kinases,Protein-Serine Kinase,Protein-Serine-Threonine Kinase,Protein-Threonine Kinase,Serine Kinase,Serine-Threonine Kinase,Serine-Threonine Kinases,Threonine Kinase,Kinase, Protein-Serine,Kinase, Protein-Serine-Threonine,Kinase, Protein-Threonine,Kinase, Serine-Threonine,Kinases, Protein Serine-Threonine,Kinases, Protein-Serine-Threonine,Kinases, Serine-Threonine,Protein Kinase, Serine-Threonine,Protein Kinases, Serine-Threonine,Protein Serine Kinase,Protein Serine Threonine Kinase,Protein Serine Threonine Kinases,Protein Threonine Kinase,Serine Threonine Kinase,Serine Threonine Kinases,Serine Threonine Protein Kinase,Serine Threonine Protein Kinases
D051379 Mice The common name for the genus Mus. Mice, House,Mus,Mus musculus,Mice, Laboratory,Mouse,Mouse, House,Mouse, Laboratory,Mouse, Swiss,Mus domesticus,Mus musculus domesticus,Swiss Mice,House Mice,House Mouse,Laboratory Mice,Laboratory Mouse,Mice, Swiss,Swiss Mouse,domesticus, Mus musculus
D052437 Adipocytes, Brown Fat cells with dark coloration due to the densely packed MITOCHONDRIA. They contain numerous small lipid droplets or vacuoles. Their stored lipids can be converted directly to energy as heat by the mitochondria. Brown Adipocytes,Brown Fat Cells,Adipocyte, Brown,Brown Adipocyte,Brown Fat Cell,Cell, Brown Fat,Cells, Brown Fat,Fat Cell, Brown,Fat Cells, Brown
D022722 Thermogenesis The generation of heat in order to maintain body temperature. The uncoupled oxidation of fatty acids contained within brown adipose tissue and SHIVERING are examples of thermogenesis in MAMMALS. Heat Production,Adaptive Thermogenesis,Facultative Thermogenesis,Nonshivering Thermogenesis,Production, Heat,Thermogeneses,Thermogenesis, Adaptive,Thermogenesis, Facultative,Thermogenesis, Nonshivering
D040901 Proteomics The systematic study of the complete complement of proteins (PROTEOME) of organisms. Peptidomics

Related Publications

Fubiao Shi, and Flaviane de Fatima Silva, and Dianxin Liu, and Hari U Patel, and Jonathan Xu, and Wei Zhang, and Clara Türk, and Marcus Krüger, and Sheila Collins
December 2023, EMBO reports,
Fubiao Shi, and Flaviane de Fatima Silva, and Dianxin Liu, and Hari U Patel, and Jonathan Xu, and Wei Zhang, and Clara Türk, and Marcus Krüger, and Sheila Collins
March 2024, Acta physiologica (Oxford, England),
Fubiao Shi, and Flaviane de Fatima Silva, and Dianxin Liu, and Hari U Patel, and Jonathan Xu, and Wei Zhang, and Clara Türk, and Marcus Krüger, and Sheila Collins
August 2016, Best practice & research. Clinical endocrinology & metabolism,
Fubiao Shi, and Flaviane de Fatima Silva, and Dianxin Liu, and Hari U Patel, and Jonathan Xu, and Wei Zhang, and Clara Türk, and Marcus Krüger, and Sheila Collins
December 2020, Molecular and cellular endocrinology,
Fubiao Shi, and Flaviane de Fatima Silva, and Dianxin Liu, and Hari U Patel, and Jonathan Xu, and Wei Zhang, and Clara Türk, and Marcus Krüger, and Sheila Collins
September 2021, The Journal of nutritional biochemistry,
Fubiao Shi, and Flaviane de Fatima Silva, and Dianxin Liu, and Hari U Patel, and Jonathan Xu, and Wei Zhang, and Clara Türk, and Marcus Krüger, and Sheila Collins
January 2017, Obesity (Silver Spring, Md.),
Fubiao Shi, and Flaviane de Fatima Silva, and Dianxin Liu, and Hari U Patel, and Jonathan Xu, and Wei Zhang, and Clara Türk, and Marcus Krüger, and Sheila Collins
February 2018, Molecular metabolism,
Fubiao Shi, and Flaviane de Fatima Silva, and Dianxin Liu, and Hari U Patel, and Jonathan Xu, and Wei Zhang, and Clara Türk, and Marcus Krüger, and Sheila Collins
August 2014, Nature medicine,
Fubiao Shi, and Flaviane de Fatima Silva, and Dianxin Liu, and Hari U Patel, and Jonathan Xu, and Wei Zhang, and Clara Türk, and Marcus Krüger, and Sheila Collins
June 2015, The Journal of endocrinology,
Fubiao Shi, and Flaviane de Fatima Silva, and Dianxin Liu, and Hari U Patel, and Jonathan Xu, and Wei Zhang, and Clara Türk, and Marcus Krüger, and Sheila Collins
January 2024, The Journal of physiology,
Copied contents to your clipboard!