Peptide antibody tools to dissect specific functions of eIF4A paralogs in cancer

Shobhit Srivastava1, Azeezat Osikoya1, David Terrero1

  • 1Department of Cell and Cancer Biology, College of Medicine and Life Sciences, University of Toledo Health Science Campus, 3000 Arlington Avenue, MS 1010, Toledo, OH, 43614, USA.

Discover Oncology
|November 26, 2025
PubMed

Insights

Researchers developed specific antibodies to distinguish between eIF4A1 and eIF4A2, crucial for understanding cancer progression. These tools aid in exploring therapeutic strategies against triple-negative breast cancer (TNBC) and metastasis.

Area of Science:

  • Molecular Biology
  • Cancer Research
  • Biochemistry

Background:

  • Eukaryotic translation initiation factors (eIFs) regulate mRNA translation, a process often altered in cancer.
  • eIF4A1 and eIF4A2 are related mRNA helicases with distinct roles in cancer, particularly triple-negative breast cancer (TNBC).
  • Existing antibodies lack specificity for eIF4A1 and eIF4A2, hindering research.

Purpose of the Study:

  • To develop and validate paralog-specific antibodies for eIF4A1 and eIF4A2.
  • To enable precise detection and study of these factors in cancer contexts.
  • To lay the groundwork for targeted cancer therapies.

Main Methods:

  • Generated and affinity-purified rabbit peptide-antibodies against unique N-terminal regions of eIF4A1 and eIF4A2.
  • Validated antibody specificity using immunoblot analysis of knockout and knockdown cellular lysates.
  • Confirmed high specificity and absence of cross-reactivity.

Main Results:

  • Developed highly specific antibodies for detecting eIF4A1 and eIF4A2.
  • Validated antibodies show no cross-reactivity, confirming their specificity.
  • Established reliable tools for studying eIF4A paralog functions.

Conclusions:

  • The validated antibodies are essential for dissecting the distinct roles of eIF4A1 and eIF4A2 in translational control.
  • These tools can inform therapeutic strategies targeting chemoresistance, tumor progression, and metastasis in TNBC.
  • This work facilitates future research on eIF4A paralog functional divergence in cancer.