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Updated: Jan 30, 2026

Engineering Cell-permeable Protein
Published on: December 28, 2009
Recombinant cell-permeable HOXA9 protein inhibits NSCLC cell migration and invasion
Seong-Lan Yu1, Han Koo2, Hoi Young Lee3
1Priority Research Center, Myunggok Medical Research Institute, College of Medicine, Konyang University, Daejeon, 35365, Republic of Korea.
Purpose:
Previously, it has been reported that homeobox A9 (HOXA9) protein expression is downregulated in lung cancer cells, and that its expression is inversely correlated with the metastatic potential of lung cancer cells both in vitro and in vivo. As such, HOXA9 shows therapeutic potential. The development of therapeutic strategies based on this protein is, however, limited due to its poor membrane permeability. To overcome this problem, we developed a system to deliver HOXA9 protein into non-small cell lung cancer (NSCLC) cells.
Methods:
First, we constructed a delivery vector expressing polyarginine, a cell-penetrating peptide, as well as HOXA9. The resulting recombinant R10-HOXA9 protein was effectively introduced into A549 and NCI-H1299 NSCLC cells. Next, we examined the roles and molecular mechanisms of recombinant R10-HOXA9 in processes involved in tumor progression. To investigate the therapeutic efficacy of the delivery system, we performed cell motility assays using both in vitro and in vivo experimental models.
Results:
We found that recombinant R10-HOXA9 protein reduced the invasion and migration rate, but not the proliferation rate, of the NSCLC cells tested, both in vitro and in vivo. Treatment of NSCLC cells with recombinant R10-HOXA9 protein led to a significant increase in E-cadherin expression. Conversely, we found that the expression of snail family zinc finger 2 (SLUG), a transcriptional repressor of E-cadherin, was markedly decreased. In an experimental metastatic mouse model, recombinant R10-HOXA9 protein was found to effectively reduce the rate of lung cancer cell motility.
Conclusions:
Our data suggest that the developed cell-permeable R10-HOXA9 system may serve as a useful tool to prevent NSCLC cell migration and invasion.
Insights
A novel delivery system successfully introduced homeobox A9 (HOXA9) protein into non-small cell lung cancer (NSCLC) cells. This therapeutic approach effectively reduced cancer cell migration and invasion, offering potential for new lung cancer treatments.
Area of Science:
- Oncology
- Molecular Biology
- Biotechnology
Background:
- Homeobox A9 (HOXA9) protein is downregulated in lung cancer, with lower expression correlating to increased metastatic potential.
- HOXA9 exhibits therapeutic promise for lung cancer, but its clinical application is hindered by poor cell membrane permeability.
Purpose of the Study:
- To develop a novel protein delivery system for enhanced HOXA9 entry into non-small cell lung cancer (NSCLC) cells.
- To investigate the therapeutic efficacy of a cell-permeable HOXA9 system in inhibiting NSCLC progression.
Main Methods:
- A recombinant protein, R10-HOXA9, was constructed by fusing HOXA9 with a cell-penetrating peptide (polyarginine).
- The R10-HOXA9 protein was delivered into A549 and NCI-H1299 NSCLC cell lines.
- In vitro and in vivo assays were conducted to evaluate the effects of R10-HOXA9 on tumor progression, including cell motility and molecular mechanism analysis.
Main Results:
- Recombinant R10-HOXA9 significantly reduced NSCLC cell invasion and migration in both in vitro and in vivo models, without affecting proliferation.
- Treatment with R10-HOXA9 increased E-cadherin expression and decreased SLUG (snail family zinc finger 2) expression.
- An experimental metastatic mouse model confirmed the reduction in lung cancer cell motility by R10-HOXA9.
Conclusions:
- The developed cell-permeable R10-HOXA9 system demonstrates potential as a therapeutic tool to inhibit NSCLC cell migration and invasion.
- This delivery strategy overcomes the limitations of HOXA9's poor membrane permeability, paving the way for its clinical investigation.
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