Related Experiment Video
Updated: Aug 16, 2026

RhoC GTPase Activation Assay
Published on: August 22, 2010
RalA and RalB: antagonistic relatives in cancer cell migration
Gary Oxford1, Charles R Owens, Brian J Titus
1Department of Molecular Physiology and Biological Physics, University of Virginia Health Sciences Center, Charlottesville, Virginia 22908, USA.
Abstract:
The Ral family of small G proteins has been implicated in tumorigenesis, invasion, and metastasis. However, little emphasis has been placed on clarifying the individual roles of the two Ral proteins, RalA and RalB, in these processes in view of their high sequence homology. Here we analyze the separate contributions of RalA and RalB in regulating cell migration, a necessary component of the invasive phenotype, in two human cancer cell lines; UMUC-3, a bladder carcinoma line, and the prostate carcinoma line, DU145. Although inhibiting RalA protein expression by approximately 80% with two different small interfering RNA duplexes had no effect on migration, inhibiting RalB expression to the same extent with two different duplexes resulted in a marked reduction in migration. Inhibiting RalB expression did trigger a significant loss of actin cytoskeleton fibers in UMUC-3 that was not seen with inhibition of RalA expression. Interestingly, simultaneous inhibition of RalA and RalB expression had no effect on migration. However, dual inhibition of RalA and RalB expression in UMUC-3 did result in an almost total loss of actin fibers as well as a reduction in proliferation, particularly in reduced serum conditions. These results suggest that RalA and RalB have different roles in cell migration and that they may in fact act as antagonists with regard to this phenotype. As further verification of this hypothesis, we found that expression of constitutively active RalA inhibited migration, whereas expression of constitutively active RalB stimulated migration, consistent with this model. In summary, we present the first demonstration that despite their significant sequence homology, RalA and RalB have nonoverlapping and opposing functions in cancer cell migration but overlapping functions in cell growth.
Insights
RalA and RalB proteins have opposing roles in cancer cell migration, with RalB crucial for cell movement and actin cytoskeleton integrity. Their functions in cell growth overlap, despite high sequence similarity.
Area of Science:
- Molecular biology
- Cell biology
- Cancer research
Background:
- The Ral family of small G proteins is linked to cancer progression, including invasion and metastasis.
- The distinct roles of RalA and RalB in these processes are not well understood due to their high sequence homology.
Purpose of the Study:
- To investigate the individual contributions of RalA and RalB to cancer cell migration.
- To elucidate the opposing or overlapping functions of RalA and RalB in cancer cell phenotypes.
Main Methods:
- Utilized small interfering RNA (siRNA) to inhibit RalA and RalB expression in UMUC-3 (bladder) and DU145 (prostate) cancer cell lines.
- Assessed the impact of gene silencing on cell migration and actin cytoskeleton organization.
- Examined the effects of constitutively active RalA and RalB expression on cell migration.
Main Results:
- Inhibition of RalB significantly reduced cancer cell migration and actin cytoskeleton integrity.
- Inhibition of RalA had no significant effect on cell migration.
- Simultaneous inhibition of both RalA and RalB led to loss of actin fibers and reduced proliferation under low serum conditions.
- Constitutively active RalA inhibited migration, while RalB stimulated it, suggesting antagonistic roles in migration.
Conclusions:
- RalA and RalB possess distinct and opposing functions in regulating cancer cell migration.
- RalB is critical for maintaining cell migration and actin cytoskeleton structure.
- RalA and RalB have overlapping roles in cell proliferation, particularly under nutrient-limiting conditions.
Related Concept Videos
Cell Polarization by Rho Proteins
Small GTPases - Ras and Rho
Three regulatory proteins control their activity:
Cell Migration
Cell Migration
Cancer Cell Migration through Invadopodia
Chemotaxis and Direction of Cell Migration

