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7
result(s) for
"Vissieres, Alexandra"
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The transcription factor ZNF469 regulates collagen production in liver fibrosis
by
Farber-Eger, Eric
,
Vissieres, Alexandra
,
Moulin, Pierre
in
Biopsy
,
Collagen
,
Collagen - biosynthesis
2025
Metabolic dysfunction–associated steatotic liver disease (MASLD) — characterized by excess accumulation of fat in the liver — now affects one-third of the world’s population. As MASLD progresses, extracellular matrix components including collagen accumulate in the liver, causing tissue fibrosis, a major determinant of disease severity and mortality. To identify transcriptional regulators of fibrosis, we computationally inferred the activity of transcription factors (TFs) relevant to fibrosis by profiling the matched transcriptomes and epigenomes of 108 human liver biopsies from a deeply characterized cohort of patients spanning the full histopathologic spectrum of MASLD. CRISPR-based genetic KO of the top 100 TFs identified ZNF469 as a regulator of collagen expression in primary human hepatic stellate cells (HSCs). Gain- and loss-of-function studies established that ZNF469 regulates collagen genes and genes involved in matrix homeostasis through direct binding to gene bodies and regulatory elements. By integrating multiomic large-scale profiling of human biopsies with extensive experimental validation, we demonstrate that ZNF469 is a transcriptional regulator of collagen in HSCs. Overall, these data nominate ZNF469 as a previously unrecognized determinant of MASLD-associated liver fibrosis.
Journal Article
The role of lysine palmitoylation/myristoylation in the function of the TEAD transcription factors
2022
The TEAD transcription factors are the most downstream elements of the Hippo pathway. Their transcriptional activity is modulated by different regulator proteins and by the palmitoylation/myristoylation of a specific cysteine residue. In this report, we show that a conserved lysine present in these transcription factors can also be acylated, probably following the intramolecular transfer of the acyl moiety from the cysteine. Using Scalloped (Sd), the
Drosophila
homolog of human TEAD, as a model, we designed a mutant protein (Glu352Gln
Sd
) that is predominantly acylated on the lysine (Lys350
Sd
). This protein binds in vitro to the three Sd regulators—Yki, Vg and Tgi—with a similar affinity as the wild type Sd, but it has a significantly higher thermal stability than Sd acylated on the cysteine. This mutant was also introduced in the endogenous locus of the
sd
gene in
Drosophila
using CRISPR/Cas9. Homozygous mutants reach adulthood, do not present obvious morphological defects and the mutant protein has both the same level of expression and localization as wild type Sd. This reveals that this mutant protein is both functional and able to control cell growth in a similar fashion as wild type Sd. Therefore, enhancing the lysine acylation of Sd has no detrimental effect on the Hippo pathway. However, we did observe a slight but significant increase of wing size in flies homozygous for the mutant protein suggesting that a higher acylation of the lysine affects the activity of the Hippo pathway. Altogether, our findings indicate that TEAD/Sd can be acylated either on a cysteine or on a lysine, and suggest that these two different forms may have similar properties in cells.
Journal Article
PAX8 and MECOM are interaction partners driving ovarian cancer
2021
The transcription factor PAX8 is critical for the development of the thyroid and urogenital system. Comprehensive genomic screens furthermore indicate an additional oncogenic role for PAX8 in renal and ovarian cancers. While a plethora of PAX8-regulated genes in different contexts have been proposed, we still lack a mechanistic understanding of how PAX8 engages molecular complexes to drive disease-relevant oncogenic transcriptional programs. Here we show that protein isoforms originating from the
MECOM
locus form a complex with PAX8. These include MDS1-EVI1 (also called PRDM3) for which we map its interaction with PAX8 in vitro and in vivo. We show that PAX8 binds a large number of genomic sites and forms transcriptional hubs. At a subset of these, PAX8 together with PRDM3 regulates a specific gene expression module involved in adhesion and extracellular matrix. This gene module correlates with PAX8 and MECOM expression in large scale profiling of cell lines, patient-derived xenografts (PDXs) and clinical cases and stratifies gynecological cancer cases with worse prognosis. PRDM3 is amplified in ovarian cancers and we show that the MECOM locus and PAX8 sustain in vivo tumor growth, further supporting that the identified function of the MECOM locus underlies PAX8-driven oncogenic functions in ovarian cancer.
Lineage-restricted transcription factor PAX8 is oncogenic in ovarian cancer cells. Here the authors show that PAX8 interacts and recruits a splice variant of the MECOM locus PRDM3 to control the gene expression module involved in adhesion and extracellular matrix, and consequently promotes ovarian tumorigenesis.
Journal Article
The Hippo kinases LATS1 and 2 control human breast cell fate via crosstalk with ERα
by
Scheel, Christina H.
,
Voshol, Hans
,
Vissieres, Alexandra
in
631/532/2118/2436
,
692/699/67/1347
,
Adaptor Proteins, Signal Transducing - agonists
2017
Ablation of the large tumour suppressor kinases 1 and 2 promotes a luminal breast cell phenotype through stabilization of oestrogen receptor-α, thereby changing human breast cell fate.
Hippo kinases and human breast cell fate
To investigate the development of human breast cancer, Mohamed Bentires-Alj and colleagues analyse which type of human breast cells give rise to cancer, and look at how tumour regulators affect the fate of both luminal epithelial and basal myoepithelial progenitors and differentiated cells. They carried out an image-based screen looking for the effects of silencing tumour suppressors. They find that the absence of members of the Hippo signalling pathways stabilizes oestrogen receptor-α signalling components to promote a luminal phenotype and increase the number of progenitors.
Cell fate perturbations underlie many human diseases, including breast cancer
1
,
2
. Unfortunately, the mechanisms by which breast cell fate are regulated are largely unknown. The mammary gland epithelium consists of differentiated luminal epithelial and basal myoepithelial cells, as well as undifferentiated stem cells and more restricted progenitors
3
,
4
. Breast cancer originates from this epithelium, but the molecular mechanisms that underlie breast epithelial hierarchy remain ill-defined. Here, we use a high-content confocal image-based short hairpin RNA screen to identify tumour suppressors that regulate breast cell fate in primary human breast epithelial cells. We show that ablation of the large tumour suppressor kinases (LATS) 1 and 2 (refs
5
,
6
), which are part of the Hippo pathway, promotes the luminal phenotype and increases the number of bipotent and luminal progenitors, the proposed cells-of-origin of most human breast cancers. Mechanistically, we have identified a direct interaction between Hippo and oestrogen receptor-α (ERα) signalling. In the presence of LATS, ERα was targeted for ubiquitination and Ddb1–cullin4-associated-factor 1 (DCAF1)-dependent proteasomal degradation. Absence of LATS stabilized ERα and the Hippo effectors YAP and TAZ (hereafter YAP/TAZ), which together control breast cell fate through intrinsic and paracrine mechanisms. Our findings reveal a non-canonical (that is, YAP/TAZ-independent) effect of LATS in the regulation of human breast cell fate.
Journal Article
The Hippo kinases LATS1 and 2 control human breast cell fate via crosstalk with ER
by
Voshol, Hans
,
Orth, Anthony P
,
Vissieres, Alexandra
in
Breast cancer
,
Cancer cells
,
Development and progression
2017
Ablation of the large tumour suppressor kinases 1 and 2 promotes a luminal breast cell phenotype through stabilization of oestrogen receptor-[alpha], thereby changing human breast cell fate. Hippo kinases and human breast cell fate To investigate the development of human breast cancer, Mohamed Bentires-Alj and colleagues analyse which type of human breast cells give rise to cancer, and look at how tumour regulators affect the fate of both luminal epithelial and basal myoepithelial progenitors and differentiated cells. They carried out an image-based screen looking for the effects of silencing tumour suppressors. They find that the absence of members of the Hippo signalling pathways stabilizes oestrogen receptor-[alpha] signalling components to promote a luminal phenotype and increase the number of progenitors. Cell fate perturbations underlie many human diseases, including breast cancer.sup.1,2. Unfortunately, the mechanisms by which breast cell fate are regulated are largely unknown. The mammary gland epithelium consists of differentiated luminal epithelial and basal myoepithelial cells, as well as undifferentiated stem cells and more restricted progenitors.sup.3,4. Breast cancer originates from this epithelium, but the molecular mechanisms that underlie breast epithelial hierarchy remain ill-defined. Here, we use a high-content confocal image-based short hairpin RNA screen to identify tumour suppressors that regulate breast cell fate in primary human breast epithelial cells. We show that ablation of the large tumour suppressor kinases (LATS) 1 and 2 (refs 5, 6), which are part of the Hippo pathway, promotes the luminal phenotype and increases the number of bipotent and luminal progenitors, the proposed cells-of-origin of most human breast cancers. Mechanistically, we have identified a direct interaction between Hippo and oestrogen receptor-[alpha] (ER[alpha]) signalling. In the presence of LATS, ER[alpha] was targeted for ubiquitination and Ddb1-cullin4-associated-factor 1 (DCAF1)-dependent proteasomal degradation. Absence of LATS stabilized ER[alpha] and the Hippo effectors YAP and TAZ (hereafter YAP/TAZ), which together control breast cell fate through intrinsic and paracrine mechanisms. Our findings reveal a non-canonical (that is, YAP/TAZ-independent) effect of LATS in the regulation of human breast cell fate.
Journal Article
Identification of a novel transasparaginase activity of Bacillus Subtilis (bTG) for sequence-specific bioconjugation
by
Zamarbide, Denise
,
Bon, Corentin
,
Vissières, Alexandra
in
Biological and Medicinal Chemistry
,
Working Paper
2024
The ability of bacillus subtilis transglutaminase (bTG) to functionalize BSA has been investigated using peptide mapping experiments. Interestingly, the conjugation was not detected on a glutamine but on an asparagine residue. A sequence determination study was further performed and a sequence of ten amino acids for site specific conjugation was identified. A monobody showing no native reactivity with the bTG enzyme was produced with the identified peptide sequences and successfully conjugated to various types of substrates in very high yields (>90 %) with a 1/1/1.5 ratio of protein/amine/enzyme. Direct conjugation to the amino linker of a small interfering RNA (siRNA) was achieved in good yield and no impact on the siRNA activity was observed following the conjugation. The identified sequences were further engineered in VHH and IgG scaffolds and successful conjugation could also be observed with both small molecules and siRNA, confirming the potential of bTG for site-specific enzymatic bioconjugation.
Integrative proteogenomics for differential expression and splicing variation in a DM1 mouse model
by
Fessenden, James
,
Utzinger, Stephan
,
Vissières, Alexandra
in
Comparative analysis
,
Disease
,
Gene expression
2022
Dysregulated mRNA splicing is involved in the pathogenesis of many diseases including cancer, neurodegenerative diseases, and muscular dystrophies such as myotonic dystrophy type 1 (DM1). Comprehensive assessment of dysregulated splicing on the transcriptome and proteome level has been methodologically challenging, and thus investigations have often been targeting only few genes. Here, we performed a large-scale coordinated transcriptomic and proteomic analysis to characterize a DM1 mouse model (HSALR) in comparison to wild-type. Our integrative proteogenomics approach comprised gene- and splicing-level assessments for mRNAs and proteins. It recapitulated many known instances of aberrant mRNA splicing in DM1 and identified new ones. It enabled the design and targeting of splicing-specific peptides and confirmed the translation of known instances of aberrantly spliced disease-related genes (e.g. Atp2a1, Bin1, Ryr1), complemented by novel findings (e.g. Ywhae, Flnc, Svil). Comparative analysis of large-scale mRNA and protein expression data showed quantitative agreement of differentially expressed genes and splicing patterns between disease and wild-type. We hence propose this work as a suitable blueprint for a robust and scalable integrative proteogenomic strategy geared towards advancing our understanding of splicing-based disorders. With such a strategy, splicing-based biomarker candidates emerge as an attractive and accessible option, as they can be efficiently asserted on the mRNA and protein level in coordinated fashion. Competing Interest Statement All authors are employees of Novartis, and some hold Novartis stock.