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Chioccioli Altadonna, G.

Publications and source records attributed to Chioccioli Altadonna, G..

2 recordsLinked to original sources

An integrin centered complex coordinates ion transport and pH to regulate f-actin organization and cell migration in breast cancer.

Reciprocal signaling between the Tumor Microenvironment (TME) and cancer cells regulates abnormal proliferation, migration and pro-metastatic behavior. Major player in such interaction is integrin-mediated cell adhesion to the Extracellular Matrix (ECM). Integrin receptors organize signaling hubs constituted by multiprotein membrane complexes often comprising ion channels and transporters. We studied whether and how integrin-centered multiprotein complexes control cell behavior in Breast Cancer (BCa) cell populations with different molecular characteristics. BCa cells were cultured onto the ECM protein fibronectin (FN), to trigger {beta}1 integrin activation. Through biochemical, immunofluorescence and electrophysiological experiments we provide evidence of a novel signaling pathway that involves a {beta}1 integrin-centered plasma membrane complex formed by different transport proteins: the hERG1 K+ channel, the neonatal form of the Na+ channel NaV1.5 (nNaV1.5) and the Na+/H+ antiporter NHE1. The NHE1/hERG1/{beta}1/nNaV1.5 complex was found on the plasma membrane of BCa cells, and particularly of Triple Negative Breast Cancer (TNBCa). When engaged by cell adhesion to FN, such membrane complex recruited the cytoskeletal actin-binding protein a-actinin1 and stimulated NHE1-mediated cytoplasmic alkalinization. Thus, the multiprotein complex activation affected TNBCa migration and invasiveness by stimulating f-actin organization directly (through -actinin1) and indirectly (by intracellular alkalinization). The contribution of both hERG1 and nNaV1.5 was essential, as the adhesion-dependent signaling pathway and its functional consequences were inhibited by blocking either channel with, respectively, E4031 and TTX, or by applying RNA silencing procedures. The contribution of hERG1 to the structural integrity of the membrane complex appeared to be critical, as the adhesion-dependent signals were hampered by harnessing the hERG1/{beta}1 integrin complex with a single chain bispecific antibody (scDb-hERG1-{beta}1) which disrupts the macromolecular complex without blocking the K+ current, as well as by E4031, which impairs the complex formation by blocking the channel in the open state. In conclusion, we revealed that integrin-centered macromolecular complexes in BCa cells recruit a battery of ion transport proteins that cooperate in modulating different aspects of the downstream signals that lead to malignant behavior. This complex could be targeted to develop novel therapeutic strategies for one of the most difficult-to-treat cancers, i.e. TNBCa.

cancer biology↗

The ataxia protein sacsin is required for integrin trafficking and synaptic organization

Autosomal recessive spastic ataxia of Charlevoix-Saguenay (ARSACS) is caused by mutations in SACS, which manifest as a childhood-onset cerebellar ataxia. Cellular ARSACS phenotypes include mitochondrial dysfunction, intermediate filament (IF) disorganization, and loss of Purkinje neurons. It is unclear how the loss of SACS causes these deficits, or why they manifest as cerebellar ataxia. We employed a multi-omics approach to characterize molecular and cellular deficiencies in SACS knockout (KO) cells. We identified alterations in microtubule structure and dynamics, protein trafficking, and mislocalization of synaptic and focal adhesion proteins. Targeting PTEN, a negative regulator of focal adhesions, rescued several cellular phenotypes in SACS KO cells. We found sacsin interacts with proteins implicated in vesicle transport, including HSP proteins, and interactions between structural and cell adhesion proteins were diminished in SACS KO cells. In all, this study suggests that trafficking and localization of synaptic adhesion proteins is a causal molecular deficiency in ARSACS.

cell biology↗