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Eil, R.

Publications and source records attributed to Eil, R..

2 recordsLinked to original sources

Intracellular K+ limits T cell exhaustion and preserves antitumor function

The cancer-killing activity of T cells is often compromised within tumors, allowing disease progression. We previously found that intratumoral elevations in extracellular K+ related to ongoing cell death constrained CD8+ T cell Akt-mTOR signaling and effector function (1,2). To alleviate K+ mediated T cell suppression, we pursued genetic means to lower intracellular K+. Transcriptomic analysis of CD8+ T cells demonstrated the Na+/K+ ATPase to be robustly and dynamically expressed. CRISPR-Cas9 mediated deletion of the catalytic alpha subunit of the Na+/K+ ATPase lowered intracellular K+ but produced tonic hyperactivity in multiple signal transduction cascades along with the acquisition of co-inhibitory receptors and terminal differentiation in mouse and human CD8+ T cells. Mechanistically, Na+/K+ ATPase disruption led to ROS accumulation due to depletion of intracellular K+ in T cells. Antioxidant treatment or high K+ media prevented Atp1a1 deficient T cells from exhausted T (TEx) cell formation. Consistent with transcriptional and proteomic data suggesting a TEx cell phenotype, T cells lacking Atp1a1 had compromised persistence and antitumor activity in a syngeneic model of orthotopic murine melanoma. Translational application of these findings will include efforts to lower intracellular K+ while limiting ROS accumulation within tumor specific T cells. SynopsisHigh extracellular K+ ({uparrow}[K+]e) is found within tumors and suppresses T cell effector function. Collier et al. find that deletion of the Na+/K+ ATPase in T cells lowers intracellular K+ and promotes ROS accumulation, tonic signal transduction and T cell exhaustion owing to ROS accumulation. Engineering T cell ion transport is an important consideration for cancer immunotherapy.

immunology↗

IL-6/STAT3 signaling drives early-stage pancreatic cancer cachexia via suppressed ketogenesis

Cancer cachexia is highly prevalent in patients with pancreatic ductal adenocarcinoma (PDAC). Although advanced cachexia is associated with inflammatory signaling, the early events driving wasting are poorly defined. Using an orthotopic mouse model of PDAC, we find that early cachexia is defined by a pronounced vulnerability to undernutrition, characterized by increased skeletal muscle wasting. PDAC suppresses lipid beta oxidation and impairs ketogenesis in the liver, which coordinates the adaptive response to nutritional scarcity. When PDAC mice are fed ketogenic diet, this effect is reversed, and muscle mass is preserved. Furthermore, physiologic levels of ketones are sufficient to protect myotubes against PDAC-associated wasting. Interleukin-6 (IL-6) drives liver metabolic reprogramming, and hepatocyte-specific loss of Signal Transducer and Activator of Transcription 3 (STAT3) is sufficient to prevent PDAC-associated muscle loss. Together, these studies define a key role for the liver in cachexia development and directly link skeletal muscle homeostasis to hepatic lipid oxidation.

cancer biology↗