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Antiapoptotic Cdc42 mutants are potent activators of cellular transformation
Shine S Tu1, Wen Jin Wu, Wannian Yang
1Department of Molecular Medicine, Cornell University, Ithaca, New York 14853, USA.
Abstract:
Cdc42 is a small GTP-binding protein which has been implicated in a number of cellular activities, including cell morphology, motility, cell-cycle progression, and malignant transformation. While GTPase-defective forms of Cdc42 inhibit cell growth, a mutation [Cdc42(F28L)] that allows the constitutive exchange of GDP for GTP and is GTPase-competent induces cellular transformation. These results suggest that Cdc42 must cycle between its GTP- and GDP-bound states to stimulate cell growth. In attempting to design Cdc42 molecules with more potent transforming activity, we set out to generate other types of Cdc42 mutants capable of constitutive GDP-GTP exchange. Here, we describe one such mutant, generated by changing a conserved aspartic acid residue at position 118 to an asparagine. The Cdc42(D118N) protein exchanges GDP for GTP more rapidly than wild-type Cdc42, but significantly more slowly than the Cdc42(F28L) mutant. Despite its slower rate of activation, the Cdc42(D118N) mutant is more potent at inducing cellular transformation than the Cdc42(F28L) protein, and causes a significant loss in actin stress fibers, reminiscent of what is observed with fibroblasts transformed by oncogenic Ras mutants. Effector-loop mutations made within the D118N background inhibit Cdc42-induced transformation and Cdc42-mediated antiapoptotic (survival) activity to similar extents. In addition, mutating aspartic acid 121 (to asparagine), which forms part of a caspase cleavage site (DLRD, residues 118-121 of Cdc42), in combination with the F28L mutation generates a Cdc42 molecule [Cdc42(F28L/D121N)] with transforming activity significantly stronger than that of Cdc42(F28L). Thus, mutations that combine some capacity for cycling between the GTP- and GDP-bound states with increased survival against apoptotic signals yield Cdc42 molecules with the maximum capability for inducing cellular transformation.
Insights
Mutating Cdc42, a GTP-binding protein, can induce cellular transformation. New mutants show increased transforming potency by enhancing GDP-GTP cycling and inhibiting apoptosis, offering insights into malignant transformation.
Area of Science:
- Molecular Biology
- Cell Biology
- Cancer Research
Background:
- Cdc42 is a GTP-binding protein regulating cell morphology, motility, cell-cycle progression, and malignant transformation.
- GTPase-defective Cdc42 inhibits cell growth, while constitutively active mutants induce transformation.
- Cdc42 requires cycling between GDP- and GTP-bound states for cell growth stimulation.
Purpose of the Study:
- To generate Cdc42 mutants with enhanced constitutive GDP-GTP exchange for increased transforming activity.
- To investigate the role of specific mutations in Cdc42-mediated cellular transformation and survival.
Main Methods:
- Site-directed mutagenesis to create Cdc42 mutants (D118N, F28L/D121N).
- Assessing GDP-GTP exchange rates and GTPase activity.
- Evaluating the induction of cellular transformation and actin stress fiber loss.
- Investigating the impact of effector-loop mutations on transformation and antiapoptotic activity.
Main Results:
- The Cdc42(D118N) mutant exhibits enhanced GDP-GTP exchange and potent cellular transformation, surpassing Cdc42(F28L).
- Cdc42(D118N) induces loss of actin stress fibers, similar to Ras-transformed cells.
- Effector-loop mutations in Cdc42(D118N) reduce transformation and antiapoptotic activity.
- The Cdc42(F28L/D121N) double mutant shows significantly stronger transforming activity than Cdc42(F28L).
Conclusions:
- Mutations promoting GDP-GTP cycling and resistance to apoptosis enhance Cdc42's transforming potential.
- Targeting Cdc42 cycling and survival pathways may offer strategies for cancer therapy.
- Understanding Cdc42 regulation is crucial for deciphering mechanisms of malignant transformation.