Opposing effects of two tissue transglutaminase protein isoforms in neuroblastoma cell differentiation
Andrew E L Tee1, Glenn M Marshall2, Pei Y Liu1
1From the Children's Cancer Institute Australia, Sydney Children's Hospital, Sydney, New South Wales 2031.
Abstract:
We have demonstrated previously that the Myc oncoprotein blocks cancer cell differentiation by forming a novel transcriptional repressor complex with histone deacetylase and inhibiting gene transcription of tissue transglutaminase (TG2). Moreover, induction of TG2 gene transcription and transamidase activity is essential for the differentiating effects of retinoids in cancer cells. Here, we show that two structurally distinct TG2 protein isoforms, the full-length (TG2-L) and the short form (TG2-S), exert opposing effects on cell differentiation. Repression of TG2-L with small interfering RNA, which did not affect TG2-S expression, induced dramatic neuritic differentiation in neuroblastoma cells. In contrast, overexpression of TG2-S or a GTP-binding-deficient mutant of TG2-L (R580A), both of which lack the GTP-binding Arg-580 residue, induced neuroblastoma cell differentiation, which was blocked by an inhibitor of transamidase activity. Whereas N-Myc repressed and retinoid activated both TG2 isoforms, repression of TG2-L, but not simultaneous repression of TG2-L and TG2-S, enhanced neuroblastoma cell differentiation due to N-Myc small interfering RNA or retinoid. Moreover, suppression of vasoactive intestinal peptide (VIP) expression alone induced neuroblastoma cell differentiation, and VIP was up-regulated by TG2-L, but not TG2-S. Taken together, our data indicate that TG2-L and TG2-S exert opposite effects on cell differentiation due to differences in GTP binding and modulation of VIP gene transcription. Our findings highlight the potential importance of repressing the GTP binding activity of TG2-L or activating the transamidase activity of TG2-L or TG2-S for the treatment of neuroblastoma, and possibly also other Myc-induced malignancies, and for enhancing retinoid anticancer effects.
Insights
Two tissue transglutaminase (TG2) isoforms, TG2-L and TG2-S, have opposing roles in cancer cell differentiation. Repressing TG2-L or activating TG2 transamidase activity may treat neuroblastoma and other Myc-induced cancers.
Area of Science:
- Molecular Biology
- Oncology
- Cell Biology
Background:
- The Myc oncoprotein inhibits cancer cell differentiation by suppressing tissue transglutaminase (TG2) gene transcription.
- TG2 induction is crucial for retinoid-driven cancer cell differentiation.
- Two TG2 isoforms, TG2-L and TG2-S, exist with potentially distinct functions.
Purpose of the Study:
- To investigate the opposing roles of TG2-L and TG2-S in neuroblastoma cell differentiation.
- To elucidate the mechanisms underlying the differential effects of TG2 isoforms.
- To explore therapeutic strategies targeting TG2 for neuroblastoma treatment.
Main Methods:
- Small interfering RNA (siRNA) was used to repress TG2-L and TG2-S expression.
- Overexpression of TG2-S and a GTP-binding-deficient TG2-L mutant (R580A) were employed.
- Inhibitors of transamidase activity and VIP expression were utilized.
- N-Myc and retinoid treatments were administered to modulate TG2 expression and cell differentiation.
Main Results:
- Repression of TG2-L induced significant neuroblastoma cell differentiation, while TG2-S expression remained unaffected.
- Overexpression of TG2-S or the R580A mutant promoted differentiation, contingent on transamidase activity.
- TG2-L repressed vasoactive intestinal peptide (VIP) expression, whereas TG2-S did not.
- Differential regulation of TG2 isoforms by N-Myc and retinoids influenced differentiation outcomes.
Conclusions:
- TG2-L and TG2-S exhibit opposing effects on neuroblastoma cell differentiation, mediated by GTP binding and VIP modulation.
- Targeting TG2-L GTP binding or activating TG2 transamidase activity presents a potential therapeutic avenue for neuroblastoma.
- These findings may extend to other Myc-driven malignancies and enhance retinoid-based cancer therapies.
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