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1.
Nature ; 611(7936): 603-613, 2022 Nov.
Article in English | MEDLINE | ID: mdl-36352230

ABSTRACT

Around 30-40% of patients with colorectal cancer (CRC) undergoing curative resection of the primary tumour will develop metastases in the subsequent years1. Therapies to prevent disease relapse remain an unmet medical need. Here we uncover the identity and features of the residual tumour cells responsible for CRC relapse. An analysis of single-cell transcriptomes of samples from patients with CRC revealed that the majority of genes associated with a poor prognosis are expressed by a unique tumour cell population that we named high-relapse cells (HRCs). We established a human-like mouse model of microsatellite-stable CRC that undergoes metastatic relapse after surgical resection of the primary tumour. Residual HRCs occult in mouse livers after primary CRC surgery gave rise to multiple cell types over time, including LGR5+ stem-like tumour cells2-4, and caused overt metastatic disease. Using Emp1 (encoding epithelial membrane protein 1) as a marker gene for HRCs, we tracked and selectively eliminated this cell population. Genetic ablation of EMP1high cells prevented metastatic recurrence and mice remained disease-free after surgery. We also found that HRC-rich micrometastases were infiltrated with T cells, yet became progressively immune-excluded during outgrowth. Treatment with neoadjuvant immunotherapy eliminated residual metastatic cells and prevented mice from relapsing after surgery. Together, our findings reveal the cell-state dynamics of residual disease in CRC and anticipate that therapies targeting HRCs may help to avoid metastatic relapse.


Subject(s)
Colorectal Neoplasms , Neoplasm Metastasis , Neoplasm Proteins , Neoplasm Recurrence, Local , Neoplasm, Residual , Receptors, Cell Surface , Animals , Humans , Mice , Colorectal Neoplasms/genetics , Colorectal Neoplasms/metabolism , Colorectal Neoplasms/pathology , Colorectal Neoplasms/therapy , Disease Progression , Neoplasm Proteins/deficiency , Neoplasm Proteins/genetics , Neoplasm Proteins/metabolism , Neoplasm Recurrence, Local/genetics , Neoplasm Recurrence, Local/pathology , Neoplasm Recurrence, Local/prevention & control , Neoplasm Recurrence, Local/therapy , Neoplasm, Residual/genetics , Neoplasm, Residual/pathology , Receptors, Cell Surface/deficiency , Receptors, Cell Surface/genetics , Receptors, Cell Surface/metabolism , Neoplasm Metastasis/genetics , Neoplasm Metastasis/pathology , Neoplasm Metastasis/prevention & control , Neoplasm Metastasis/therapy , Disease Models, Animal , T-Lymphocytes/cytology , T-Lymphocytes/immunology , Lymphocytes, Tumor-Infiltrating/cytology , Lymphocytes, Tumor-Infiltrating/immunology , Neoadjuvant Therapy , Immunotherapy
2.
Nat Cancer ; 3(9): 1052-1070, 2022 09.
Article in English | MEDLINE | ID: mdl-35773527

ABSTRACT

Colorectal cancer (CRC) patient-derived organoids predict responses to chemotherapy. Here we used them to investigate relapse after treatment. Patient-derived organoids expand from highly proliferative LGR5+ tumor cells; however, we discovered that lack of optimal growth conditions specifies a latent LGR5+ cell state. This cell population expressed the gene MEX3A, is chemoresistant and regenerated the organoid culture after treatment. In CRC mouse models, Mex3a+ cells contributed marginally to metastatic outgrowth; however, after chemotherapy, Mex3a+ cells produced large cell clones that regenerated the disease. Lineage-tracing analysis showed that persister Mex3a+ cells downregulate the WNT/stem cell gene program immediately after chemotherapy and adopt a transient state reminiscent to that of YAP+ fetal intestinal progenitors. In contrast, Mex3a-deficient cells differentiated toward a goblet cell-like phenotype and were unable to resist chemotherapy. Our findings reveal that adaptation of cancer stem cells to suboptimal niche environments protects them from chemotherapy and identify a candidate cell of origin of relapse after treatment in CRC.


Subject(s)
Colorectal Neoplasms , Organoids , Animals , Cell Differentiation , Colorectal Neoplasms/drug therapy , Mice , Neoplastic Stem Cells , Recurrence
3.
Cell Stem Cell ; 26(6): 845-861.e12, 2020 06 04.
Article in English | MEDLINE | ID: mdl-32396863

ABSTRACT

Colorectal cancers (CRCs) are composed of an amalgam of cells with distinct genotypes and phenotypes. Here, we reveal a previously unappreciated heterogeneity in the biosynthetic capacities of CRC cells. We discover that the majority of ribosomal DNA transcription and protein synthesis in CRCs occurs in a limited subset of tumor cells that localize in defined niches. The rest of the tumor cells undergo an irreversible loss of their biosynthetic capacities as a consequence of differentiation. Cancer cells within the biosynthetic domains are characterized by elevated levels of the RNA polymerase I subunit A (POLR1A). Genetic ablation of POLR1A-high cell population imposes an irreversible growth arrest on CRCs. We show that elevated biosynthesis defines stemness in both LGR5+ and LGR5- tumor cells. Therefore, a common architecture in CRCs is a simple cell hierarchy based on the differential capacity to transcribe ribosomal DNA and synthesize proteins.


Subject(s)
Colorectal Neoplasms , Neoplastic Stem Cells , Cell Line, Tumor , Colorectal Neoplasms/genetics , DNA, Ribosomal , Humans , Receptors, G-Protein-Coupled
4.
Cell Metab ; 26(1): 256-266.e4, 2017 Jul 05.
Article in English | MEDLINE | ID: mdl-28683291

ABSTRACT

Glycogenin is considered essential for glycogen synthesis, as it acts as a primer for the initiation of the polysaccharide chain. Against expectations, glycogenin-deficient mice (Gyg KO) accumulate high amounts of glycogen in striated muscle. Furthermore, this glycogen contains no covalently bound protein, thereby demonstrating that a protein primer is not strictly necessary for the synthesis of the polysaccharide in vivo. Strikingly, in spite of the higher glycogen content, Gyg KO mice showed lower resting energy expenditure and less resistance than control animals when subjected to endurance exercise. These observations can be attributed to a switch of oxidative myofibers toward glycolytic metabolism. Mice overexpressing glycogen synthase in the muscle showed similar alterations, thus indicating that this switch is caused by the excess of glycogen. These results may explain the muscular defects of GSD XV patients, who lack glycogenin-1 and show high glycogen accumulation in muscle.


Subject(s)
Glucosyltransferases/metabolism , Glycogen/metabolism , Glycoproteins/metabolism , Muscle, Skeletal/physiology , Animals , Energy Metabolism , Glucosyltransferases/genetics , Glycogen Synthase/metabolism , Glycoproteins/genetics , Male , Mice , Mice, Inbred C57BL , Mice, Knockout , Oxygen/metabolism , Oxygen Consumption
5.
Nat Commun ; 7: 11199, 2016 Apr 05.
Article in English | MEDLINE | ID: mdl-27045898

ABSTRACT

The mechanisms that allow breast cancer (BCa) cells to metabolically sustain rapid growth are poorly understood. Here we report that BCa cells are dependent on a mechanism to supply precursors for intracellular lipid production derived from extracellular sources and that the endothelial lipase (LIPG) fulfils this function. LIPG expression allows the import of lipid precursors, thereby contributing to BCa proliferation. LIPG stands out as an essential component of the lipid metabolic adaptations that BCa cells, and not normal tissue, must undergo to support high proliferation rates. LIPG is ubiquitously and highly expressed under the control of FoxA1 or FoxA2 in all BCa subtypes. The downregulation of either LIPG or FoxA in transformed cells results in decreased proliferation and impaired synthesis of intracellular lipids.


Subject(s)
Breast Neoplasms/metabolism , Gene Expression Regulation, Neoplastic , Hepatocyte Nuclear Factor 3-alpha/metabolism , Hepatocyte Nuclear Factor 3-beta/metabolism , Lipase/metabolism , Lipid Metabolism/genetics , 4-Butyrolactone/analogs & derivatives , 4-Butyrolactone/pharmacology , Animals , Biological Transport , Breast Neoplasms/genetics , Breast Neoplasms/pathology , Cell Line, Tumor , Cell Movement/drug effects , Cell Proliferation/drug effects , Doxycycline/pharmacology , Enzyme Inhibitors/pharmacology , Female , Hepatocyte Nuclear Factor 3-alpha/antagonists & inhibitors , Hepatocyte Nuclear Factor 3-alpha/genetics , Hepatocyte Nuclear Factor 3-beta/antagonists & inhibitors , Hepatocyte Nuclear Factor 3-beta/genetics , Humans , Lactones/pharmacology , Lipase/antagonists & inhibitors , Lipase/genetics , MCF-7 Cells , Mice , Mice, Nude , Neoplasm Invasiveness , Orlistat , RNA, Small Interfering/genetics , RNA, Small Interfering/metabolism , Signal Transduction , Xenograft Model Antitumor Assays
6.
J Cell Biochem ; 117(11): 2597-607, 2016 11.
Article in English | MEDLINE | ID: mdl-27017955

ABSTRACT

Sertoli cell metabolism actively maintains the nutritional needs of germ cells. It has been described that after glucose incorporation in Sertoli cells, less than 1% is converted to glycogen suggesting low levels of glycogen synthase activity. Phosphorylation of muscle glycogen synthase (MGS) at serine 640 (pS640MGS) decreases its activity, and this form of the enzyme was discovered as a non-ribosomal protein that modulates the translation of a subset of transcripts in HeLa cells. The aim of our study was to functionally characterize MGS in cultured Sertoli cells, as well as to explore this new feature related to RNA molecules. We detected MGS in the cytoplasm of Sertoli cells as well as in the nuclei. The activity rates of the enzyme were extremely low indicating that MGS is expressed but almost inactive. Protein targeting to glycogen (PTG) overexpression was performed to activate MGS by dephosphorylation. PTG induced glycogen synthesis massively, confirming that this enzyme is present but inactive. This finding correlates with high levels of pS640MGS, which were assayed by phosphatase treatment. To explore a putative new function for MGS in Sertoli cells, we performed RNA immunoprecipitation coupled to microarray studies. The results revealed that MGS co-immunoprecipitated with the several mRNAs and also rRNAs. These findings indicate that MGS is expressed Sertoli cells but in an inactive form, and also support a possibly novel feature of this metabolic enzyme associated with RNA-related molecules. J. Cell. Biochem. 117: 2597-2607, 2016. © 2016 Wiley Periodicals, Inc.


Subject(s)
Glycogen Synthase/metabolism , Glycogen/biosynthesis , Muscle, Skeletal/enzymology , RNA/metabolism , Sertoli Cells/enzymology , Animals , Blotting, Western , Cells, Cultured , Fluorescent Antibody Technique , Glucose/metabolism , Immunoprecipitation , Male , Mice , Mice, Inbred C57BL
7.
Diabetologia ; 59(5): 1012-20, 2016 May.
Article in English | MEDLINE | ID: mdl-26825527

ABSTRACT

AIMS/HYPOTHESIS: Glycogen accumulation occurs in beta cells of diabetic patients and has been proposed to partly mediate glucotoxicity-induced beta cell dysfunction. However, the role of glycogen metabolism in beta cell function and its contribution to diabetes pathophysiology remain poorly understood. We investigated the function of beta cell glycogen by studying glucose homeostasis in mice with (1) defective glycogen synthesis in the pancreas; and (2) excessive glycogen accumulation in beta cells. METHODS: Conditional deletion of the Gys1 gene and overexpression of protein targeting to glycogen (PTG) was accomplished by Cre-lox recombination using pancreas-specific Cre lines. Glucose homeostasis was assessed by determining fasting glycaemia, insulinaemia and glucose tolerance. Beta cell mass was determined by morphometry. Glycogen was detected histologically by periodic acid-Schiff's reagent staining. Isolated islets were used for the determination of glycogen and insulin content, insulin secretion, immunoblots and gene expression assays. RESULTS: Gys1 knockout (Gys1 (KO)) mice did not exhibit differences in glucose tolerance or basal glycaemia and insulinaemia relative to controls. Insulin secretion and gene expression in isolated islets was also indistinguishable between Gys1 (KO) and controls. Conversely, despite effective glycogen overaccumulation in islets, mice with PTG overexpression (PTG(OE)) presented similar glucose tolerance to controls. However, under fasting conditions they exhibited lower glycaemia and higher insulinaemia. Importantly, neither young nor aged PTG(OE) mice showed differences in beta cell mass relative to age-matched controls. Finally, a high-fat diet did not reveal a beta cell-autonomous phenotype in either model. CONCLUSIONS/INTERPRETATION: Glycogen metabolism is not required for the maintenance of beta cell function. Glycogen accumulation in beta cells alone is not sufficient to trigger the dysfunction or loss of these cells, or progression to diabetes.


Subject(s)
Glucose/metabolism , Glycogen/metabolism , Insulin-Secreting Cells/metabolism , Animals , Female , Glycogen/physiology , Glycogen Synthase/genetics , Glycogen Synthase/metabolism , Homeostasis , Insulin/genetics , Insulin/metabolism , Insulin-Secreting Cells/physiology , Male , Mice , Mice, Knockout
8.
Histochem Cell Biol ; 143(3): 313-24, 2015 Mar.
Article in English | MEDLINE | ID: mdl-25371328

ABSTRACT

Diabetic nephropathy (DN) is a major complication of diabetic patients and the leading cause of end-stage renal disease. Glomerular dysfunction plays a critical role in DN, but deterioration of renal function also correlates with tubular alterations. Human DN is characterized by glycogen accumulation in tubules. Although this pathological feature has long been recognized, little information exists about the triggering mechanism. In this study, we detected over-expression of muscle glycogen synthase (MGS) in diabetic human kidney. This enhanced expression suggests the participation of MGS in renal metabolic changes associated with diabetes. HK2 human renal cell line exhibited an intrinsic ability to synthesize glycogen, which was enhanced after over-expression of protein targeting to glycogen. A correlation between increased glycogen amount and cell death was observed. Based on a previous transcriptome study on human diabetic kidney disease, significant differences in the expression of genes involved in glycogen metabolism were analyzed. We propose that glucose, but not insulin, is the main modulator of MGS activity in HK2 cells, suggesting that blood glucose control is the best approach to modulate renal glycogen-induced damage during long-term diabetes.


Subject(s)
Diabetes Mellitus, Type 2/enzymology , Diabetic Nephropathies/enzymology , Gene Expression Regulation, Enzymologic , Glycogen Synthase/biosynthesis , Muscles/enzymology , Aged , Cells, Cultured , Diabetes Mellitus, Type 2/pathology , Diabetic Nephropathies/pathology , Female , Gene Expression Profiling , Glycogen Synthase/metabolism , Humans , Immunohistochemistry , Male , Real-Time Polymerase Chain Reaction
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