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Ranek, M. J.

Publications and source records attributed to Ranek, M. J..

3 recordsLinked to original sources

Signaling Node at TSC2 S1365 Potently Regulates T-Cell Differentiation and Improves Adoptive Cellular Cancer Therapy

MTORC1 integrates signaling from the immune microenvironment to regulate T-cell activation, differentiation, and function. TSC2 in the tuberous sclerosis complex potently regulates mTORC1 activation. CD8+ T-cells lacking TSC2 have constitutively enhanced mTORC1 activity and generate potent effector T cells; however sustained mTORC1 activation prevents generation of long-lived memory CD8+ T-cells. Here we show manipulating TSC2 at Ser1365 potently regulates activated but not basal mTORC1 signaling in T cells. Unlike non-stimulated TSC2 knockout cells, CD8+ T-cells expressing mutant TSC2-S1365A (SA) have normal basal mTORC1 activity. PKC and T-cell Receptor (TCR) stimulation induces TSC2 S1365 phosphorylation and preventing this with the SA mutation markedly increases mTORC1 activation and T-cell effector function. Consequently, CD8+ SA T-cells display greater effector responses while retaining their capacity to become long-lived memory T-cells. CD8+ SA T-cells also display enhanced effector function under hypoxic and acidic conditions. In murine and human solid-tumor models, CD8+ SA T-cells used as adoptive cell therapy have greater anti-tumor immunity than WT CD8+ T-cells. These findings reveal an upstream mechanism to regulate mTORC1 activity in T-cells. The TSC2-SA mutation enhances both T-cell effector function and long-term persistence/memory formation, supporting a novel approach to engineer better CAR-T cells to treat cancer.

immunology↗

Constitutive Inhibition of Transient Receptor Potential CanonicalType 6 (TRPC6) by O-GlcNAcylation at Threonine-221

Transient receptor potential canonical type 6 (TRPC6) is a non-voltage gated cation channel that principally conducts calcium to regulate signaling in cardiac, vascular, neuronal and other cells. Abnormally increased TRPC6 expression/conductance and genetic gain of function mutations contribute to fibrosis, hypertrophy, proteinuria, and edema, notably linked to its stimulation of nuclear factor of activated T-cells (NFAT) signaling. Hyperglycemia (HG) also activates TRPC6/NFAT as a cause of diabetic renal disease. While prior work linked HG-TRPC6 activation to oxidant stress, the role of another major HG modification - O-GlcNAcylation, is unknown. Here we show TRPC6 is constitutively O-GlcNAcylated, TRPC6 and O-GlcNAc transferase proteins interact, this modification potently suppresses basal channel conductance and NFAT activity, and it is unaltered by HG. Proteomics identifies O-GlcNAcylation at Ser14, Thr70, and Thr221 in the N-terminus ankyrin-4 (AR4) and neighboring linker (LH1) domains of TRPC6. Of these, T221 is most impactful as a T221A mutation increases basal NFAT activity 11-fold, TRPC6 conductance 75-80% vs wild-type, and when expressed in cardiomyocytes amplifies NFAT-pro-hypertrophic gene expression. T221 is highly conserved and mutating homologs in TRPC3 and TRPC7 also markedly elevates basal NFAT activity. Molecular models predict electrostatic interactions between T221 O-GlcNAc and Ser199, Glu200, and Glu246, and we find similarly elevated NFAT activity from alanine substitutions at these coordinating sites as well. Thus, O-GlcNAcylation at T221 and its interaction with coordinating residues in AR4-LH1 is required for basal TRPC6 channel conductance and regulation of NFAT.

biochemistry↗

Single Serine on TSC2 Exerts Biased Control over mTORC1 Activation by ERK1/2 but Not Akt

The mammalian target of rapamycin complex 1 (mTORC1) is tightly controlled by tuberous sclerosis complex-2 (TSC2) that is regulated by phosphorylation from kinases responding to environmental cues. Protein kinase G specifically modifies serine-1365 (S1364, human), and its phosphorylation (or phosphomimetic SE mutant) potently blocks mTORC1 co-activation by pathological stress, while a phospho-silenced (SA) mutation does the opposite. Neither alter basal mTORC1 activity. Here we show S1365 exerts biased control over mTORC1 activity (S6K phosphorylation) modifying ERK1/2 but not Akt-dependent stimulation. Whereas mTORC1 activation by endothelin-1 is potently modified by S1365 status, insulin or PDGF stimulation are unaltered. TSC2-S1365 is also phosphorylated upon ET-1 but not insulin stimulation in a PKG-dependent manner, revealing intrinsic bias. Neither energy or nutrient modulation of mTORC1 are impacted by S1365. Consistent with these results, knock-in mice with either TSC2 SA or SE mutations develop identical obesity, glucose intolerance, and fatty liver disease from a high fat diet. Thus, S1365 provides an ERK1/2-selective mTORC1 control mechanism and a genetic means to modify pathological versus physiological mTOR stimuli.

cell biology↗