Background/Objectives: Hepatocellular carcinoma (HCC) remains a major malignancy with high incidence and mortality, in part due to its diverse etiology and intratumoral heterogeneity, which contributes to drug resistance and frequent recurrence. SALL1 (Spalt-Like Transcription Factor 1), a zinc-finger transcription factor, was reported to function as a tumor suppressor in several cancers, including breast cancer and glioma, and accumulating evidence support its involvement in tumor biology. In this study, the role of SALL1 in HCC was examined. Methods: Public RNA and protein databases derived from human HCC were interrogated. Western blotting quantification of clinical HCC for SALL1 levels was carried out. Cell culture and xenograft studies were performed using genetically modified HCC tumor cells. Results: As revealed by pubic RNA and protein database analysis and further western blotting quantification of clinical samples of HCC, SALL1 is decreased in human HCC. The effect of reduced SALL1 expression on the tumorigenic properties and transcriptional regulation in HCC was then examined. Knockdown of SALL1 in the HCC cell lines Huh7 and Hep3B, enhanced cell proliferation in vitro and accelerated tumor growth in a xenograft mouse model, suggesting that lower SALL1 expression increases cell proliferation and tumorigenesis in HCC. RNA-seq and ChIP analyses further identified three novel candidate target genes (SLC6A14, GABRG1, and AKR1B10), suggesting that SALL1 may exert a tumor-suppressive effect, at least in part, through negative regulation of these genes. Conclusions: These findings establish SALL1 as a possible tumor suppressor and provide new insights into the biological significance of SALL1 downregulation in HCC. SALL1 could be a candidate prognostic marker and a potential therapeutic target.
Skeletal muscle has an innate ability to restore damaged muscle fibers by contributing specific progenitor cells, called muscle satellite cells. Here we show that secretoglobin (SCGB) 3A1, a tumor suppressor gene in various malignancies including rhabdomyosarcoma, is induced just after muscle injury and contributes to damaged muscle fiber regeneration. Lineage tracing of SCGB3A1 in mice show that SCGB3A1-positive cells highly express myosin heavy chain (MyHC)-IIX in damaged fiber area. Scgb3a1-null and Pax7CreERT2;Scgb3a1f/f conditional-null mice exhibit defective IIX and IIB fiber regeneration, with a concomitant reduction in the expression of Notch3, a gene important for the maintenance of satellite cell self-renewal pools. Aged Scgb3a1-null mice show reduced size of muscle fibers and mass, resulting in compromised muscle performance as compared to the age-matched wild-type mice. This study reveals that SCGB3A1 is an unexpected novel molecule expressed in muscle satellite cells that contributes to fiber type specific muscle regeneration.
Abstract NKX2-1 is a homeodomain transcription factor, known as a master regulator of thyroid development. NKX2-1 is also crucial for lung epithelium differentiation, and the involvement of NKX2-1 in lung carcinogenesis and cancer progression has been intensely investigated. However, the role of NKX2-1 in thyroid cancer progression remains elusive. The Cancer Genome Atlas (TCGA) dataset analysis demonstrated that papillary thyroid cancer (PTC) patients with low NKX2-1 mRNA expression had significantly poorer prognosis than those with a combination of intermediate and high mRNA expression of NKX2-1. Lentivirus-transduced tetracycline (Tet)-inducible system was used to achieve NKX2-1 overexpression in advanced follicular thyroid cancer (FTC) cell lines, FTC-238 and WRO, and an anaplastic thyroid cancer (ATC) cell line 8305C, in which NKX2-1 expression is barely/not detected. All these thyroid cancer cell lines showed significant suppression of cell proliferation with NKX2-1 overexpression. In addition, NKX2-1 overexpression inhibited migration of FTC-238 cells. The levels of mRNA and protein expression of mesenchymal markers, matrix metalloproteinase-2 (MMP-2) and fibronectin, were decreased by NKX2-1 overexpression in FTC-238 cells, suggesting a possibility that NKX2-1 partially inhibits epithelial-mesenchymal transition (EMT). SNAIL and SLUG are essential EMT transcription factors involved in metastasis in cancer progression. NKX2-1 mRNA expression was significantly lower in high SNAI1 (encoding SNAIL) expressing PTC in TCGA database. Indeed, suppression of SNAIL protein expression was found upon overexpression of NKX2-1 in FTC-238 cells which naturally express high level of SNAIL. These findings suggest that NKX2-1 may inhibit the migration of advanced thyroid cancer cells through SNAIL-induced EMT. Similarly, suppression of SLUG protein expression by overexpression of NKX2-1 was observed in WRO and 8305C cells which express high level of SLUG protein. Whether NKX2-1 overexpression inhibits migration and invasion of WRO and 8305C cells through SLUG-induced EMT is currently under examination. The Tet-inducible NKX2-1 expressing thyroid cancer cells will be used for in vivo evaluation of their metastatic ability using an immunocompromised mouse model. The findings so far suggest that NKX2-1 exerts a tumor suppressive activity in advanced thyroid cancers through suppression of cell proliferation, and cell migration presumably via suppression of EMT transcription factors. Citation Format: Yo-Taro Shirai, Shioko Kimura. Tumor suppressive role of NKX2-1 in advanced thyroid cancer progression [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2024; Part 1 (Regular Abstracts); 2024 Apr 5-10; San Diego, CA. Philadelphia (PA): AACR; Cancer Res 2024;84(6_Suppl):Abstract nr 207.
Three isoforms of secretoglobin (SCGB) 3A2, namely type A, B, and C, are endogenously produced through alternative splicing. SCGB3A2 type A, the correctly spliced major type, begins to be expressed from embryonic day 11.5 in mice and shows various physiological activities such as promoting lung maturation and bronchial branching, anti-inflammatory effects, and ameliorating induced pulmonary fibrosis. To investigate the potential of SCGB3A2 peptides as a therapeutic to treat respiratory diseases, in this study, serially overlapping nine peptides were synthesized to cover the entire type C isoform, and five and one peptides covering the C-terminal region of type A and B, respectively. To evaluate their biological activities, each peptide was subjected to cell proliferation and apoptosis analyses in vitro using mouse lung fibroblast-derived MLg cells, bronchial branching rate using ex vivo mouse fetal lung organ cultures, and in vivo allergic airway inflammation mouse model. Among type A and C peptides, those corresponding to the C-terminal region of the SCGB3A2 sequence exhibited its unique biological activities of promoting cell proliferation and bronchial branching, and/or inhibiting apoptosis. The type B peptide did not show any proliferative effect while inhibited apoptosis. In a mouse model of allergic airway inflammation, lung inflammation was improved by the administration of most of the C-terminal region-derived type A and type C peptides. The results suggest that the bioactivity resides towards the C-terminal region of SCGB3A2 sequence, and the peptides covering this region could be used as a therapeutic in treating lung inflammation.
Metabolic dysfunction-associated steatohepatitis (MASH) - previously described as nonalcoholic steatohepatitis (NASH) - is a major driver of liver fibrosis in humans, while liver fibrosis is a key determinant of all-cause mortality in liver disease independent of MASH occurrence. CCAAT/enhancer binding protein α (CEBPA), as a versatile ligand-independent transcriptional factor, has an important function in myeloid cells, and is under clinical evaluation for cancer therapy. CEBPA is also expressed in hepatocytes and regulates glucolipid homeostasis; however, the role of hepatocyte-specific CEBPA in modulating liver fibrosis progression is largely unknown. Here, hepatic CEBPA expression was found to be decreased during MASH progression both in humans and mice, and hepatic CEBPA mRNA was negatively correlated with MASH fibrosis in the human liver. CebpaΔHep mice had markedly enhanced liver fibrosis induced by a high-fat, high-cholesterol, high-fructose diet or carbon tetrachloride. Temporal and spatial hepatocyte-specific CEBPA loss at the progressive stage of MASH in CebpaΔHep,ERT2 mice functionally promoted liver fibrosis. Mechanistically, hepatocyte CEBPA directly repressed Spp1 transactivation to reduce the secretion of osteopontin, a fibrogenesis inducer of hepatic stellate cells. Forced hepatocyte-specific CEBPA expression reduced MASH-associated liver fibrosis. These results demonstrate an important role for hepatocyte-specific CEBPA in liver fibrosis progression, and may help guide the therapeutic discoveries targeting hepatocyte CEBPA for the treatment of liver fibrosis.
Secretoglobin (SCGB) 3A2 is a bioactive molecule exhibiting various functions such as improving allergic airway inflammation and pulmonary fibrosis and promoting bronchial branching and proliferation during lung development. To determine if and how SCGB3A2 is involved in chronic obstructive pulmonary disease (COPD), a multifactorial disease with both airway and emphysematous lesions, a COPD mouse model was created by exposing Scgb3a2-deficient (KO), Scgb3a2-lung-specific overexpressing (TG), and wild type (WT) mice to cigarette smoke (CS) for 6 months. The KO mice showed loss of lung structure under control condition, and CS exposure resulted in more expansion of airspace and destruction of alveolar wall than WT mouse lungs. In contrast, TG mouse lungs showed no significant changes after CS exposure. SCGB3A2 increased the expression and phosphorylation of signal transducers and activators of transcription (STAT)1 and STAT3, and the expression of α1-antitrypsin (A1AT) in mouse lung fibroblast-derived MLg cells and mouse lung epithelial-derived MLE-15 cells. In MLg cells, A1AT expression was decreased in Stat3-knockdown cells, and increased upon Stat3 overexpression. STAT3 formed a homodimer when cells were stimulated with SCGB3A2. Chromatin immunoprecipitation and reporter assays demonstrated that STAT3 binds to specific binding sites on the Serpina1a gene encoding A1AT and upregulates its transcription in lung tissues of mice. Furthermore, nuclear localization of phosphorylated STAT3 upon SCGB3A2 stimulation was detected by immunocytochemistry. These findings demonstrate that SCGB3A2 protects the lungs from the development of CS-induced emphysema by regulating A1AT expression through STAT3 signaling.
Our study first revealed that hypo-osmolarity-induced mechanotransduction enhanced calcium-mediated AKT signaling via TRPV2 activation, resulting in contributing to apoptosis resistance. The finding indicates a possible view that liver cirrhosis-induced hyponatremia promotes hepatocellular carcinogenesis.
<p>Supplementary Table 3. Top 100 differentially expressed genes in BVECyp24a1-null cells</p>
<p>Supplementary Table 3. Top 100 differentially expressed genes in BVECyp24a1-null cells</p>
Background Secretoglobin (SCGB) 3A2 is a novel bioactive molecule with anti-inflammatory and anti-fibrotic activities. SCGB3A2 also promotes the maturation of bronchial divergence and the lungs during embryonic development. However, much remains unknown concerning the roles of SCGB3A2 in diseases associated with aging. Methods The lungs of Scgb3a2-knockout (KO) mice and their wild-type (WT) littermates were subjected to histological analysis, Victoria blue staining to evaluate of elastic fibers, and lung morphometric analysis during the postnatal period (birth to 8 weeks) and during aging (8 weeks to 2 years). Their spleens were also histologically evaluated. The expression of lung surfactant protein (SP) mRNAs was examined by quantitative reverse transcriptase-polymerase chain reaction. RNA sequencing (RNAseq) analysis was performed on 3-month-old KO and WT mouse lungs. Results The alveolar spaces of KO mice continuously expanded between 0.5 and 2 years of age, accompanied by increases of the mean linear intercept and destructive index. KO mouse lungs displayed inflammation associated with lymphocyte aggregate starting at 1 year of age, and the inflammation was worse than that of WT mouse lungs. A high number of lymphoma-like cells were presented in 2-year-old KO mouse lungs. White pulp fusion was detected in the spleens of both WT and KO mice older than 0.5 years; however, the fusion was more severe in KO mice than in WT mice. The expression of surfactant protein (SP)-A, SP-B, SP-C, and SP-D mRNAs in KO mouse lungs decreased with age, and after 1 year of age, the expression of most SPs was significantly lower in KO mice than in WT mice. RNAseq demonstrated that the expression of immune system-related genes was highly altered in KO mouse lungs. Conclusion SCGB3A2 may be required for maintaining homeostasis and immune activity in the lungs during aging. SCGB3A2 deficiency might increase the risk of emphysema of the lung.
Secretoglobin (SCGB) 3A2 was first identified in 2001 as a protein exhibiting similarities in amino acid sequence and gene structure to SCGB1A1, a multi-functional cytokine-like molecule highly expressed in airway epithelial Club cells that was the first identified and extensively studied member of the SCGB gene superfamily. SCGB3A2 is a small secretory protein of ~10 kDa that forms a dimer and a tetramer. SCGB3A2 is predominantly expressed in airway epithelial Club cells, and has anti-inflammatory, growth factor, anti-fibrotic, and anti-cancer activities that influence various lung diseases. This review summarizes the current understanding of SCGB3A2 biological functions and its role in human diseases with emphasis on its mechanisms of actions and signaling pathway.
Differential transcription of identical DNA sequences leads to distinct tissue lineages and then multiple cell types within a lineage, an epigenetic process central to progenitor and stem cell biology. The associated genome-wide changes, especially in native tissues, remain insufficiently understood, and are hereby addressed in the mouse lung, where the same lineage transcription factor NKX2-1 promotes the diametrically opposed alveolar type 1 (AT1) and AT2 cell fates. Here, we report that the cell-type-specific function of NKX2-1 is attributed to its differential chromatin binding that is acquired or retained during development in coordination with partner transcriptional factors. Loss of YAP/TAZ redirects NKX2-1 from its AT1-specific to AT2-specific binding sites, leading to transcriptionally exaggerated AT2 cells when deleted in progenitors or AT1-to-AT2 conversion when deleted after fate commitment. Nkx2-1 mutant AT1 and AT2 cells gain distinct chromatin accessible sites, including those specific to the opposite fate while adopting a gastrointestinal fate, suggesting an epigenetic plasticity unexpected from transcriptional changes. Our genomic analysis of single or purified cells, coupled with precision genetics, provides an epigenetic basis for alveolar cell fate and potential, and introduces an experimental benchmark for deciphering the in vivo function of lineage transcription factors.
Non-canonical inflammasome activation that recognizes intracellular lipopolysaccharide (LPS) causes pyroptosis, the inflammatory death of innate immune cells. The role of pyroptosis in innate immune cells is to rapidly eliminate pathogen-infected cells and limit the replication niche in the host body. Whether this rapid cell elimination process of pyroptosis plays a role in elimination of cancer cells is largely unknown. Our earlier study demonstrated that a multi-functional secreted protein, secretoglobin (SCGB) 3A2, chaperones LPS to cytosol, and activates caspase-11 and the non-canonical inflammasome pathway, leading to pyroptosis. Here we show that SCGB3A2 exhibits marked anti-cancer activity against 5 out of 11 of human non-small cell lung cancer cell lines in mouse xenographs, while no effect was observed in 6 of 6 small cell lung cancer cell lines examined. All SCGB3A2-LPS-sensitive cells express syndecan 1 (SDC1), a SCGB3A2 cell surface receptor, and caspase-4 (CASP4), a critical component of the non-canonical inflammasome pathway. Two epithelial-derived colon cancer cell lines expressing SDC1 and CASP4 were also susceptible to SCGB3A2-LPS treatment. TCGA analysis revealed that lung adenocarcinoma patients with higher SCGB3A2 mRNA levels exhibited better survival. These data suggest that SCGB3A2 uses the machinery of pyroptosis for the elimination of human cancer cells via the non-canonical inflammasome pathway, and that SCGB3A2 may serve as a novel therapeutic to treat cancer, perhaps in combination with immuno and/or targeted therapies.
Many tissues if not all are thought to contain undifferentiated cells that are answerable for recovery and fix of the tissue after injury. Dysregulation of tissue recovery might bring about different obsessive conditions, among which malignant growth is the most broadly considered. Remarkably, the supposed malignancy undifferentiated organisms or tumor-starting cells, have been concentrated to comprehend the components of carcinogenesis and additionally metastasis. In any case, the idea of disease immature microorganisms, not to mention typical stem/forebear cells, especially those of the thyroid remaining parts subtle. There stays a hole in information between grown-up thyroid stem/forebear cells and disease immature microorganisms of the thyroid, and if as well as how they are identified with one another. Comprehension of the component for thyroid recovery and method of investment of typical grown-up thyroid stem/forebear cells in this cycle will ideally yield a more complete comprehension of the idea of thyroid malignant growth foundational microorganisms, as well as assist with understanding the pathogenesis of other thyroid sicknesses. This audit sums up the current comprehension of grown-up thyroid stem/begetter cells, with specific accentuation on how they add to thyroid recovery.
Non-medullary thyroid cancer (NMTC) treatment is based on the ability of thyroid follicular cells to accumulate radioactive iodide (RAI). However, in a subset of NMTC patients tumor dedifferentiation occurs, leading to RAI resistance. Digoxin has been demonstrated to restore iodide uptake capacity in vitro in poorly differentiated and anaplastic NMTC cells, termed redifferentiation. The aim of the present study was to investigate the in vivo effects of digoxin in TPO-Cre/LSL-BrafV600E mice and digoxin-treated NMTC patients. Mice with thyroid cancer were subjected to 3D ultrasound for monitoring tumor growth and 124I PET/CT for measurement of intratumoral iodide uptake. Post-mortem analyses on tumor tissues comprised gene expression profiling and measurement of intratumoral autophagy activity. Through PALGA (Dutch Pathology Registry), archived tumor material was obtained from 11 non-anaplastic NMTC patients who were using digoxin. Clinical characteristics and tumor material of these patients were compared to 11 matched control NMTC patients never treated with digoxin. We found that in mice, tumor growth was inhibited and 124I accumulation was sustainably increased after short-course digoxin treatment. Post-mortem analyses revealed that digoxin treatment increased autophagy activity and enhanced expression of thyroid-specific genes in mouse tumors compared to vehicle-treated mice. Digoxin-treated NMTC patients exhibited significantly higher autophagy activity and a higher differentiation status as compared to matched control NMTC patients, and were associated with favourable clinical outcome. These in vivo data support the hypothesis that digoxin may represent a repositioned adjunctive treatment modality that suppresses tumor growth and improves RAI sensitivity in patients with RAI-refractory NMTC.
Abstract The multi-step carcinogenesis model, including the adenoma-carcinoma sequence, has been proposed in many cancers including those of colon, pancreas, and thyroid. BRAF activation is among the reported gene mutations important for thyroid carcinogenesis. However, the role of NKX2-1, a master regulator of thyroid development and function, in thyroid carcinogenesis remains elusive. In this study, we investigated the role of NKX2-1 in thyroid neoplasm formation using thyroid-specific Nkx2-1 conditional KO mice, Nkx2-1(fl/fl);TPO-Cre (cKO mice). Nkx2-1(fl/fl) (WT) and cKO mice were each allotted to four groups: 1. Control Diet, 2. Control Diet + Radiation, 3. Low Iodine Diet (LID), 4. LID + Radiation. Whole body gamma-irradiation (2 Gy, 3 times every other day) was carried out at 4-8 weeks of age, followed by switching the diet to either Control Diet or LID. Thyroid histology was examined at 1.1-1.3 years after the start of the diet. In both WT and cKO mice, iodine-deficiency, regardless of radiation, induced diffuse hyperplasia (goiter) in more than 50% of the mice, and increased the incidence of focal hyperplasia considered as a preneoplastic lesion. Adenoma formation was only observed in LID-treated mice regardless of radiation, suggesting that iodine-deficiency, but not radiation, is a key factor for mouse thyroid adenoma formation. The incidence of adenoma formation was significantly higher in cKO mice than WT mice in LID + Radiation group (14% for WT vs 52% for cKO, in progress). In addition, carcinoma formation was observed only in LID + Radiation-treated mice, suggesting that radiation is necessary to proceed from adenoma to cancer in thyroid carcinogenesis. Further, there is a tendency for higher incidence of carcinoma in LID + Radiation-treated cKO mice (4% for WT vs 11% for cKO, in progress). These results suggest that the loss of Nkx2-1 can promote adenoma formation induced by iodine-deficiency, and possibly facilitate carcinogenesis induced by LID + Radiation. In summary, our results suggest that NKX2-1 may function as a tumor suppressor in thyroid carcinogenesis. We are now trying to investigate the molecular mechanisms by which loss of NKX2-1 affects thyroid proliferation and facilitates neoplasm formation by examining the molecular profiles of mouse thyroids after LID and/or radiation treatment. Citation Format: Yo-Taro Shirai, Yoshinori Takizawa, Manabu Iwadate, Jorge Paiz, Shigetoshi Yokoyama, Masaaki Miyakoshi, Jerrold M. Ward, Shioko Kimura. Role of NKX2-1 in thyroid neoplasms induced by iodine-deficiency and radiation [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2021; 2021 Apr 10-15 and May 17-21. Philadelphia (PA): AACR; Cancer Res 2021;81(13_Suppl):Abstract nr 2661.