Bax Inhibitor 1 Increases Cell Adhesion through Actin Polymerization: Involvement of Calcium and Actin Binding

Author:

Lee Geum-Hwa12,Ahn Taeho3,Kim Do-Sung12,Park Seoung Ju24,Lee Yong Chul24,Yoo Wan Hee25,Jung Sung Jun6,Yang Jae-Seong7,Kim Sanguk7,Muhlrad Andras8,Seo Young-Rok9,Chae Soo-Wan1,Kim Hyung-Ryong10,Chae Han-Jung12

Affiliation:

1. Department of Pharmacology and Cardiovascular Research Institute, Chonbuk National University, Jeonju, South Korea

2. Research Center for Pulmonary Disorder, Chonbuk National University Hospital, Jeonju, South Korea

3. Department of Biochemistry, College of Veterinary Medicine, Chonnam National University, Gwangju, South Korea

4. Department of Internal Medicine and Airway Remodeling Laboratory, School of Medicine, Chonbuk National University, Jeonju, South Korea

5. Division of Rheumatology, Department of Internal Medicine, Chonbuk National University, Jeonju, South Korea

6. Department of Physiology, College of Medicine, Kangwon National University, Chunchon, South Korea

7. Division of Molecular and Life Sciences, POSTECH, Pohang, South Korea

8. Institute of Dental Sciences, School of Dental Medicine, Hebrew University, Jerusalem 91120, Israel

9. Department of Pharmacology, Medical Research Center, College of Medicine, Kyung Hee University, Seoul 130-701, South Korea

10. Department of Dental Pharmacology, School of Dentistry, Wonkwang University, Iksan, South Korea

Abstract

ABSTRACT Bax inhibitor 1 (BI-1), a transmembrane protein with Ca 2+ channel-like activity, has antiapoptotic and anticancer activities. Cells overexpressing BI-1 demonstrated increased cell adhesion. Using a proteomics tool, we found that BI-1 interacted with γ-actin via leucines 221 and 225 and could control actin polymerization and cell adhesion. Among BI-1 −/− cells and cells transfected with BI-1 small interfering RNA (siRNA), levels of actin polymerization and cell adhesion were lower than those among BI-1 +/+ cells and cells transfected with nonspecific siRNA. BI-1 acts as a leaky Ca 2+ channel, but mutations of the actin binding sites (L221A, L225A, and L221A/L225A) did not change intra-endoplasmic reticulum Ca 2+ , although deleting the C-terminal motif (EKDKKKEKK) did. However, store-operated Ca 2+ entry (SOCE) is activated in cells expressing BI-1 but not in cells expressing actin binding site mutants, even those with the intact C-terminal motif. Consistently, actin polymerization and cell adhesion were inhibited among all the mutant cells. Compared to BI-1 +/+ cells, BI-1 −/− cells inhibited SOCE, actin polymerization, and cell adhesion. Endogenous BI-1 knockdown cells showed a similar pattern. The C-terminal peptide of BI-1 (LMMLILAMNRKDKKKEKK) polymerized actin even after the deletion of four or six charged C-terminal residues. This indicates that the actin binding site containing L221 to D231 of BI-1 is responsible for actin interaction and that the C-terminal motif has only a supporting role. The intact C-terminal peptide also bundled actin and increased cell adhesion. The results of experiments with whole recombinant BI-1 reconstituted in membranes also coincide well with the results obtained with peptides. In summary, BI-1 increased actin polymerization and cell adhesion through Ca 2+ regulation and actin interaction.

Publisher

American Society for Microbiology

Subject

Cell Biology,Molecular Biology

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