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Interaction between CD82 and integrin αVβ3 selectively regulates collective movement of tumor cells via endolysosomal trafficking.

Tetraspanin CD82/KAI1 inhibits cell movement and metastasis of malignant tumors, and reduced and lost expressions of CD82 predict worse outcomes of patients with malignant tumors. Here we found that CD82 inhibits both solitary and collective movement of tumor cells. The CD82 YVAA mutation, which affects CD82 trafficking, selectively abrogates CD82-mediated inhibition of collective migration. Cilengitide, at the concentration that specifically inhibits integrin αVβ3, also selectively blocks collective movement, underscoring a promotive role of integrin αVβ3 in this mode of cell motility. In contrast, integrin αVβ5 appears non-essential for collective migration, and both αVβ3 and αVβ5 are dispensable for solitary movement on fibronectin, highlighting distinct functions of different integrins in different modes of tumor cell movement. CD82 interacts with αVβ3 and αVβ5 integrins and downregulates their protein levels, while CD82 YVAA mutation relinquishes this downregulation without disrupting CD82 interactions with these integrins. Mechanistically, CD82, but not the YVAA mutant, considerably reduces digitation junction-the structure where integrin αVβ3 localizes-and likely directs integrin αVβ3 for lysosomal degradation, thereby lowering its level and suppressing collective migration. Thus, our study reveals that i) integrin αVβ3 promotes collective movement of tumor cells, ii) CD82 counteracts this by diminishing integrin αVβ3 and its presence in microextrusions, and iii) digitation junction likely participates in collective cell movement. Our study further demonstrates that endolysosomal trafficking of CD82 and integrin αVβ3 is needed for their collective movement-regulatory activities and that coupling of metastasis suppressor CD82/KAI1 with different partners regulates different modes of cell movement.

Humans

Nongenomic Stimulatory Effect of T3 on Calcium Dynamics in GnRH Neurons via Integrin αVβ3.

Many clinical studies have identified correlations between thyroid dysfunction and reproductive issues, yet the underlying mechanisms behind this interaction remain poorly understood. In this study, we investigated the effect of triiodothyronine (T3) on the activity of gonadotropin-releasing hormone (GnRH) neurons, a key regulator of the central reproductive axis. Dual labeling confirmed that GnRH neurons express thyroid receptor (TR)α and integrin αVβ3 receptors mediating genomic and nongenomic effects of thyroid hormones, respectively. Using calcium imaging in an ex vivo model, we show that T3 induces a rapid and sustained increase of calcium oscillation frequency in GnRH neurons. No change in response was detected after application of T4. The T3 stimulatory effect was not inhibited by a TR-specific antagonist (1-850) but was mimicked by membrane-impermeable T3-BSA, indicating a mechanism independent of nuclear TR signaling. In contrast, the blockade of membrane αVβ3 integrins (with cilengitide) prevented the T3-induced increase in GnRH neurons calcium peak oscillation frequency. Further investigation using modulators of intracellular calcium and calcium entry revealed that binding to αVβ3 integrin can induce distinct calcium responses depending on the ligand, with T3 triggering a complex response involving multiple channels and calcium sources, possibly with compensatory mechanisms. In sum, these results demonstrate for the first time a direct effect of thyroid hormones on GnRH neuronal activity, with T3 stimulating calcium oscillations through the nongenomic αVβ3 integrin pathway. Understanding this thyroid-reproductive axis interaction will help clarify the mechanisms linking thyroid dysfunction to reproductive disorders and pave the way for targeted therapeutic interventions.

Animals