Characterization of the role of Samsn1 loss in multiple myeloma development

Natasha L Friend1,2, Duncan R Hewett1,2, Vasilios Panagopoulos1,2

  • 1Myeloma Research Laboratory Adelaide Medical School Faculty of Health and Medical Sciences University of Adelaide Adelaide Australia.

FASEB Bioadvances
|September 14, 2020
PubMed

Insights

The protein SAMSN1

Area of Science:

  • Oncology
  • Immunology
  • Genetics

Background:

  • SAMSN1 was identified as a potential tumor suppressor in multiple myeloma.
  • Previous studies showed Samsn1 re-expression inhibited tumor growth in a murine model.

Purpose of the Study:

  • To investigate the mechanism behind SAMSN1's tumor suppressor activity.
  • To clarify SAMSN1's role in multiple myeloma progression and metastasis.

Main Methods:

  • Utilized 5TGM1 murine myeloma cells and human myeloma cell lines (RPMI-8226, JJN3, LP-1, OPM2).
  • Administered cells intratibially and intravenously into KaLwRij and NSG mice.
  • Generated SAMSN1 knockout and wild-type mice (C57BL/6/Samsn1-/- and C57BL/6 Samsn1+/+) for graft-rejection studies.

Main Results:

  • SAMSN1 expression inhibited metastasis but not primary tumor growth in KaLwRij mice.
  • SAMSN1 did not affect proliferation or migration of human myeloma cells in vitro.
  • Tumor suppressive effects of SAMSN1 were not observed in NSG mice.
  • Growth of Samsn1-expressing 5TGM1 cells was limited in Samsn1-/- mice, indicating graft rejection.

Conclusions:

  • The in vivo tumor suppressor activity of SAMSN1 is largely due to graft rejection by Samsn1-/- recipient mice.
  • Experimental designs using knockout mice require careful consideration of protein expression mismatches.
  • Findings have significant implications for cancer research utilizing genetically modified animal models.

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