Defining the conformational states that enable transglutaminase 2 to promote cancer cell survival versus cell death
Cody Aplin1,2, Kara A Zielinski3, Suzette Pabit3
1Department of Chemistry and Chemical Biology, Cornell University, Ithaca, NY 14853.
Abstract:
Transglutaminase 2 (TG2) is a GTP-binding/protein-crosslinking enzyme that has been investigated as a therapeutic target for Celiac disease, neurological disorders, and aggressive cancers. TG2 has been suggested to adopt two conformational states that regulate its functions: a GTP-bound, closed conformation, and a calcium-bound, crosslinking-active open conformation. TG2 mutants that constitutively adopt an open conformation are cytotoxic to cancer cells. Thus, small molecules that maintain the open conformation of TG2 could offer a new therapeutic strategy. Here, we investigate TG2, using static and time-resolved small-angle X-ray scattering (SAXS) and single-particle cryoelectron microscopy (cryo-EM), to determine the conformational states responsible for conferring its biological effects. We also describe a newly developed TG2 inhibitor, LM11, that potently kills glioblastoma cells and use SAXS to investigate how LM11 affects the conformational states of TG2. Using SAXS and cryo-EM, we show that guanine nucleotide-bound TG2 adopts a monomeric closed conformation while calcium-bound TG2 assumes an open conformational state that can form higher order oligomers. SAXS analysis also suggests how a TG2 mutant that constitutively adopts the open state binds nucleotides through an alternative mechanism to wildtype TG2. Furthermore, we use time-resolved SAXS to show that LM11 increases the ability of calcium to drive TG2 to an open conformation, which is not reversible by guanine nucleotides and is cytotoxic to cancer cells. Taken together, our findings demonstrate that the conformational dynamics of TG2 are more complex than previously suggested and highlight how conformational stabilization of TG2 by LM11 maintains TG2 in a cytotoxic conformational state.
Insights
Transglutaminase 2 (TG2) enzyme dynamics are complex. A new inhibitor, LM11, stabilizes TG2 in a cytotoxic open conformation, offering a potential cancer therapy strategy.
Area of Science:
- Biochemistry
- Structural Biology
- Enzymology
Background:
- Transglutaminase 2 (TG2) is a GTP-binding/protein-crosslinking enzyme implicated in Celiac disease, neurological disorders, and cancer.
- TG2 exists in two main states: a closed, GTP-bound form and an open, calcium-bound, crosslinking-active form.
- Constitutively open TG2 mutants exhibit cytotoxicity towards cancer cells, suggesting open-state stabilization as a therapeutic approach.
Approach:
- Utilized static and time-resolved small-angle X-ray scattering (SAXS) and single-particle cryoelectron microscopy (cryo-EM) to elucidate TG2 conformational states.
- Investigated the novel TG2 inhibitor LM11 for its effects on TG2 conformation and glioblastoma cell cytotoxicity.
- Analyzed TG2-guanine nucleotide and TG2-calcium interactions to understand conformational regulation.
Key Points:
- Guanine nucleotide-bound TG2 adopts a monomeric closed conformation, while calcium-bound TG2 forms an open, oligomeric state.
- A TG2 mutant in a constitutive open state binds nucleotides via an alternative mechanism compared to wild-type.
- LM11 enhances calcium-induced TG2 opening, creating a stable, cytotoxic conformation resistant to guanine nucleotide reversal.
Conclusions:
- TG2 conformational dynamics are more intricate than previously understood.
- LM11 effectively stabilizes TG2 in a cytotoxic open conformation, presenting a promising therapeutic strategy for aggressive cancers.
- Targeting TG2 conformational states offers a novel avenue for cancer treatment development.
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