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. 2008 Oct 1;68(19):7718-22.
doi: 10.1158/0008-5472.CAN-08-2042.

Mutations in the focal adhesion targeting region of deleted in liver cancer-1 attenuate their expression and function

Affiliations

Mutations in the focal adhesion targeting region of deleted in liver cancer-1 attenuate their expression and function

Yi-Chun Liao et al. Cancer Res. .

Abstract

Deleted in liver cancer-1 (DLC-1) is a RhoGTPase-activating protein (RhoGAP) domain containing tumor suppressor that is often down-regulated in various cancer types. Previously, we have shown that DLC-1 is recruited to focal adhesions by binding to the Src homology 2 domains of tensins and the focal adhesion localization is critical for the tumor suppression activity of DLC-1. To investigate whether mutations in the focal adhesion targeting (FAT) region might occur and attenuate the expression, localization, and function of DLC-1, we have first mapped the FAT region to the amino acid residues from 201 to 500, and then sequenced cDNAs and genomic DNAs encoding the FAT region from cancer patients. Several missense and nonsense mutations were detected. All missense mutations were further examined for the potential effect on the function of DLC-1. Although these mutations did not seem to affect the focal adhesion localization of DLC-1, the activities of suppressing tumor cell growth were impaired in two mutants: T301K and S308I. Consistent with the fact that the RhoGAP activity of DLC-1 is essential for inhibiting tumor cell growth, the RhoGAP activities were significantly reduced in these mutants, suggesting that the FAT region also contains a regulatory element for its COOH-terminal RhoGAP domain. Our studies have shown that mutations in DLC-1 may lead to loss of function and contribute to the tumorigenesis, and have revealed an allosteric regulation site for its RhoGAP activity.

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Figures

Figure 1
Figure 1. Identification of the FAT region of DLC-1 and focal adhesion localization of DLC-1 mutants
(A) A549 cells grown on coverslips were transfected with indicated GFP-fusion constructs. After labeling with anti-tensin3 antibodies followed by Alexa Fluor 594-conjugated secondary antibody, cells were visualized with a confocal microscope. Arrows indicate GFP-fusion protein and tensin3 colocalized at focal adhesions. Bar, 10 μm. (B) Cell lysate from DLC-1(201-500)(lane 1), DLC-1(279-535)(lane 2), DLC-1(1-535) (lane 3), DLC-1(1-535)T301K(lane 4), DLC-1(1-535)S308I (lane 5), or DLC-1(1-535)T301K/S308I (lane 6) GFP fusion transfectant was immunoprecipitated with anti-GFP and analyzed by immunoblotting with anti-GFP to show similar expression levels and correct sizes of recombinant proteins.
Figure 2
Figure 2. Colony formation assays of DLC-1 mutants
(A) A representative colony formation assay is shown. MDA-MB-468 cells were transfected with indicated constructs. After being cultured in media containing 0.8 mg/ml G418 for two weeks, G418-resistant colonies were stained with crystal violet. (B) The histogram shows the colony formation efficiency of each GFP-DLC-1 mutant comparing to the wild type (WT). (C) Cell lysate from each transfectant was immunoprecipitated with anti-GFP and analyzed by immunoblotting with anti-GFP to show similar expression levels and correct sizes of recombinant proteins.
Figure 3
Figure 3. RhoGAP activities of DLC-1 mutants
HEK293T cells transfected with indicated GFP fusion constructs were treated with lysophosphatidic acid and then RhoA-GTP levels were analyzed by GST-RBD pull down assay followed by anti-RhoA blotting (top). The expression levels of endogenous RhoA (middle) and recombinant GFP-fusion proteins (bottom) were confirmed by immunoblotting with anti-RhoA and anti-GFP antibodies.

References

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