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Loop 6 of RhoA confers specificity for effector binding, stress fiber formation, and cellular transformation
H Zong1, N Raman, L A Mickelson-Young
1Department of Biochemistry and Molecular Biology, Indiana University School of Medicine, Indianapolis, Indiana 46202, USA.
Abstract:
Rho family GTPases regulate multiple cellular processes, including cytoskeletal organization, gene expression, and transformation. These effects are achieved through the interaction of GTP-bound proteins with various downstream targets. A series of RhoA/Rac1 and Rho/Ras chimeras was generated to map the domain(s) of RhoA involved in its association with two classes of effector kinase, represented by PRK2 and ROCK-I. Although the switch 1 domain was required for effector binding, the N terminus of Rho (residues 1-75) was interchangeable with that of Rac. This suggested that the region of Rho that confers effector binding specificity lay further C-terminal. Subsequent studies indicated that the "insert domain"(residues 123-137), a region unique to Rho family GTPases, is not the specificity determinant. However, a determinant for effector binding was identified between Rho residues 75-92. Rac to Rho point mutations (V85D or A88D) within loop 6 of Rac promoted its association with PRK2 and ROCK, whereas the reciprocal Rho(D87V/D90A) double mutant significantly reduced effector binding capacity. In vivo studies showed that microinjection of Rac(Q6IL/V85D/A88D) but not Rac(Q6IL) induced stress fiber formation in LLC-PK epithelial cells, suggesting that loop 6 residues conferred the ability of Rac to activate ROCK. On the other hand, the reciprocal Rho (Q6IL/D87V/D90A) mutant was defective in its ability to transform NIH 3T3 cells. These data suggest that although Rho effectors can utilize a Rho or Rac switch 1 domain to sense the GTP-bound state of Rho, unique residues within loop 6 are essential for determining both effector binding specificity and cellular function.
Insights
Unique residues within loop 6 of Rho GTPases are essential for effector binding specificity and cellular function, determining interactions with kinases like PRK2 and ROCK-I. This research clarifies how RhoA and Rac1 regulate cellular processes.
Area of Science:
- Cell Biology
- Molecular Biology
- Signal Transduction
Background:
- Rho family GTPases are key regulators of cellular processes like cytoskeletal organization and gene expression.
- Their functions are mediated by interactions between GTP-bound proteins and downstream targets.
Purpose of the Study:
- To map the specific domains of RhoA responsible for binding to effector kinases PRK2 and ROCK-I.
- To identify the molecular determinants of effector binding specificity in Rho GTPases.
Main Methods:
- Generation of RhoA/Rac1 and Rho/Ras chimeras.
- Site-directed mutagenesis to create specific point mutations in Rho and Rac.
- In vivo microinjection studies in LLC-PK epithelial cells and NIH 3T3 cells.
Main Results:
- The switch 1 domain is necessary but not sufficient for effector binding.
- A determinant for effector binding specificity was localized to residues 75-92 (loop 6) in Rho.
- Specific mutations in loop 6 of Rac (V85D/A88D) enhanced binding to PRK2 and ROCK, while Rho mutations (D87V/D90A) reduced binding.
- Mutant Rac induced stress fiber formation, and mutant Rho showed defective cell transformation.
Conclusions:
- Unique residues within loop 6 are critical for determining effector binding specificity in Rho GTPases.
- These loop 6 residues dictate the distinct cellular functions mediated by Rho and Rac, including cytoskeletal organization and cell transformation.