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Arneson-Wissink, P. C.

Publications and source records attributed to Arneson-Wissink, P. C..

3 recordsLinked to original sources

The RNA-binding protein HuR impairs adipose tissue anabolism in pancreatic cancer cachexia

BackgroundCachexia is defined by chronic loss of fat and muscle, is a frequent complication of pancreatic ductal adenocarcinoma (PDAC), and negatively impacts patient outcomes. Nutritional supplementation cannot fully reverse tissue wasting, and the mechanisms underlying this phenotype are unclear. This work aims to define the relative contributions of catabolism and anabolism to adipose wasting in PDAC-bearing mice. Human antigen R (HuR) is an RNA-binding protein recently shown to suppress adipogenesis. We hypothesize that fat wasting results from a loss of adipose anabolism driven by increased HuR activity in adipocytes of PDAC-bearing mice. MethodsAdult C57BL/6J mice received orthotopic PDAC cell (KrasG12D; p53R172H/+; Pdx1-cre) (PDAC) or PBS (sham) injections. Mice exhibiting moderate cachexia (9 days after injection) were fasted for 24h, or fasted 24h and refed 24h before euthanasia. A separate cohort of PDAC mice were treated with an established HuR inhibitor (KH-3, 100 mg/kg) and subjected to the fast/refeed paradigm. We analyzed body mass, gross fat pad mass, and adipose tissue mRNA expression. We quantified lipolytic rate as the normalized quantity of glycerol released from 3T3-L1 adipocytes in vitro, and gonadal fat pads (gWAT) ex vivo. Results3T3-L1 adipocytes treated with PDAC cell conditioned media (CM) had lower expression of lipolysis and lipogenesis genes than control cells, and did not display elevated lipolysis as measured by liberated glycerol. PDAC gWAT cultured ex vivo displayed decreased lipolysis compared to sham gWAT (-54.7%). PDAC and sham mice lost equivalent fat mass after a 24h fast, however, PDAC mice could not restore inguinal fat pads (iWAT) (-40.5%) or gWAT (-31.8%) mass after refeeding. RNAseq revealed 572 differentially expressed genes in gWAT from PDAC compared to sham mice. Downregulated genes (n=126) were associated with adipogenesis (adj p=0.05), and expression of adipogenesis master regulators Pparg and Cebpa were reduced in gWAT from PDAC mice. Immunohistochemistry revealed increased HuR staining in gWAT (+74.9%) and iWAT (+41.2%) from PDAC mice. Inhibiting HuR binding restored lipogenesis in refed animals with a concomitant increase in iWAT mass (+131.7%). ConclusionsOur work highlights deficient adipose anabolism as a driver of reduced lipid content in 3T3-L1 adipocytes treated with PDAC conditioned media and PDAC mice. The small molecule KH-3, which disrupts HuR binding, restored adipose anabolism in PDAC mice. This highlights HuR as a potentially targetable regulatory node for adipose anabolism in cancer cachexia.

cancer biology↗

Pancreatic cancer cells overexpressing interleukin 6 induce T-cell-mediated tumor clearance and durable anti-tumor immune response

Background & AimsTumor immune resistance is recognized as a contributor to low survivorship in pancreatic ductal adenocarcinoma (PDAC). The inflammatory cytokine interleukin-6 (IL-6) promotes polarization of CD4 T cell populations away from immune tolerance, and induces differentiation of cytotoxic CD8 T cells. This work aims to test whether IL-6 could stimulate an anti-tumor response in PDAC MethodsWe overexpressed IL-6 in multiple KrasG12D/+, Tp53R172H/+, Pdx1-Cre (KPC) cell lines, which were orthotopically implanted in mice (OT-PDACIL6). We followed mouse survival and measured tumor growth, tumor histology, and plasma IL-6 at 5 and 10 days after tumor implantation. We measured tumor immune cell infiltration via flow cytometry and histology. We used antibody-based T cell depletion and secondary tumor implantation rechallenge to test the dependency of the durable immune reaction on T cells. We use lipid nanoparticle (LNP)-based delivery of IL-6 mRNA to the pancreas as an orthogonal approach for testing the effect of elevated IL-6 in the tumor microenvironment on anti-tumor T cell invasion. ResultsImproved survival occurred in all instances of OT-PDACIL6, with one cell line (KxPxCx) reproducibly resulting in long-term recurrence-free survival. With KxPxCx cells, circulating IL-6 was 100-fold higher in OT-KxPxCxIL6 than in OT-KxPxCxparental mice. Flow cytometry revealed increased T cells and NK cells, and decreased T regulatory cells, and we observed significantly increased lymphoid aggregates in OT-KXPXCXIL6 as compared to OT--KxPxCxparental tumors. Antibody-based CD4+ and CD8+ T cell depletion prevented tumor clearance and completely abolished the survival advantage in OT-KxPxCxIL6 mice. The anti-tumor immune response to OT-KxPxCxIL6 rendered mice immune to re-challenge with OT-KxPxCxparental tumors. LNP delivery of IL-6 to the pancreas elevated systemic IL-6 levels [~]50 fold, lowered tumor burden, and increased anti-tumor T cell phenotypes. ConclusionsLocally high IL-6 concentrations potently enhance the T cell-mediated anti-tumor response to PDAC. SYNOPSISInterleukin-6 induces rapid and durable T cell-driven immune clearance of pancreatic ductal adenocarcinoma. The anti-tumor immune microenvironment is hallmarked by increased lymphoid aggregate formation, increased CD4 T cell abundance, and decreased Treg abundance.

cancer biology↗

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↗