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HDGF induces inflammatory cancer-associated fibroblast formation through ENO1-mediated glycolytic reprogramming in esophageal squamous-cell carcinoma.

Inflammatory cancer-associated fibroblasts (iCAFs) are a highly plastic stromal population that critically shape tumor progression, immunosuppression, and therapeutic response in esophageal squamous-cell carcinoma (ESCC). Epithelial-intrinsic programs are increasingly recognized as key determinants of fibroblast reprogramming within the tumor microenvironment, yet the underlying mechanisms remain incompletely understood. Here, we identified hepatoma-derived growth factor (HDGF) as a pivotal epithelial-intrinsic regulator that drives iCAF formation in ESCC. Mechanistically, nuclear HDGF functioned as a transcriptional activator by directly binding the ENO1 promoter, thereby upregulating the expression of the glycolytic enzyme enolase 1, enhancing aerobic glycolysis, and promoting lactate secretion from tumor cells. Tumor-derived lactate was subsequently taken up by CAFs and induced histone H4 lysine 12 lactylation (H4K12la), which epigenetically activated NF-κB signaling and promoted iCAF formation. Functionally, HDGF-induced iCAFs promoted tumor progression through activation of the IL-6/JAK1/STAT3 axis and established an immunosuppressive microenvironment characterized by increased recruitment of regulatory T cells and reduced infiltration of CD8+ T cells, thereby facilitating immune evasion. Therapeutically, blockade of ENO1 effectively disrupted the glycolysis-lactylation cascade, markedly suppressing tumor growth and iCAF formation in vivo. Moreover, ENO1 inhibition reprogrammed the immunosuppressive tumor microenvironment and significantly enhanced the efficacy of anti-PD-1 therapy. Collectively, our findings reveal an HDGF/ENO1/H4K12la/iCAF axis that links tumor metabolic reprogramming, stromal inflammatory activation, and immunosuppression in ESCC, identifying this axis as a promising therapeutic target for overcoming immunotherapy resistance.

Phosphopyruvate Hydratase

Purification of acidic fibroblast growth factor from bovine heart and its localization in the cardiac myocytes.

We found an endogenous growth factor, referred to here as heart-derived growth factor (HDGF), that stimulates the proliferation of vascular endothelial cells. HDGF was purified from bovine myocardium using a procedure that involves denaturation of undesired proteins with methanol and chloroform. Soluble HDGF was purified essentially to homogeneity in a single step by heparin affinity chromatography. The purified HDGF was identified to be acidic fibroblast growth factor based on the following properties: molecular weight of 18,000, isoelectric point of 5.2, amino acid composition and sequence, its dissociation from a heparin affinity column at 0.9 M NaCl, potentiation of activity in the presence of heparin, and antigenicity. Our yield of HDGF was 500 micrograms/kg of tissue. Antiserum raised to HDGF localized HDGF in the cardiac myocytes in culture. These data indicate that a large amount of acidic fibroblast growth factor is present in the heart, and the cardiac myocytes are likely to be a major source of it.

Amino Acid Sequence

Human tumor cells synthesize an endothelial cell growth factor that is structurally related to basic fibroblast growth factor.

A human hepatoma cell line synthesizes, as evidenced by metabolic labeling, an endothelial cell mitogen that is found to be mostly cell associated. The hepatoma-derived growth factor (HDGF) has been purified to homogeneity by a combination of Bio-Rex 70, heparin-Sepharose, and reverse-phase chromatography; it is a cationic polypeptide with a molecular weight of about 18,500-19,000. HDGF is structurally related to basic fibroblast growth factor (FGF). Immunological analysis demonstrates that antiserum prepared against a synthetic peptide corresponding to the amino-terminal sequence of basic FGF cross-reacts with HDGF when analyzed by electrophoretic blotting and by immunoprecipitation. Sequence analysis of tryptic fragments demonstrates that HDGF contains sequences that are homologous to both amino-terminal and carboxyl-terminal sequences of basic FGF.

Amino Acid Sequence

Heparin affinity of anionic and cationic capillary endothelial cell growth factors: analysis of hypothalamus-derived growth factors and fibroblast growth factors.

Bovine hypothalamus-derived growth factors (HDGF), pituitary fibroblast growth factor (FGF), and brain FGF were analyzed by chromatography on immobilized heparin and tested for the ability to stimulate the proliferation of capillary endothelial (CE) cells. Two distinct CE cell growth factors were found in hypothalamus, one anionic (aHDGF; pI of about 5) and one cationic (cHDGF; pI of about 8). Both aHDGF and cHDGF adhered tightly to immobilized heparin. They were eluted with 0.9-1.1 M NaCl and 1.3-1.5 M NaCl, respectively. Pituitary and brain FGF were also found to bind to immobilized heparin and to stimulate CE cell proliferation. Pituitary FGF was eluted at 1.4-1.6 M NaCl. The elution profile of brain FGF showed that two peaks of CE cell growth factor activity were eluted from the heparin column, one at 1.0 M NaCl and a second at 1.4-1.6 M NaCl. The tight binding of all of these growth factors to heparin (particularly aHDGF, whose binding is unexpected because of its negative charge) is presented as evidence that CE cell growth factors all share an affinity for heparin.

Animals