Evidence map›Paper›PMID 40330075›Full record

ArticleBiochemistry and biophysics reports2025

Heterohybridomas producing human immunoglobulin light chains using CD138-selected bone marrow cells.

P Zhou, X Ma, S Scalia, D Toskic, X Wu, T Fogaren, Nancy Coady Lyons, Luis Del Pozo-Yauner, R L Comenzo

Abstract read
In one paragraph

Article in Biochemistry and biophysics reports, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.

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1 · What the graph read from it

What it found

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The abstract states no effect estimate the extractor could read, or names no intervention and outcome on the map, so this paper lights no cell and moves no belief. It is still indexed, cited and linked below.

2 · The registry

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3 · Its place in the literature

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4 · The record

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5 · Who and what money

Authors and funding

9 authors.

P ZhouTufts Medicine Myeloma and Amyloid Program, USA.
X MaTufts Medicine Myeloma and Amyloid Program, USA.
S ScaliaTufts Medicine Myeloma and Amyloid Program, USA.
D ToskicTufts Medicine Myeloma and Amyloid Program, USA.
X WuDivision of Hematology-Oncology, Department of Medicine, Tufts Medical Center, Boston, MA, USA.
T FogarenTufts Medicine Myeloma and Amyloid Program, USA.
Nancy Coady LyonsTufts Medicine Myeloma and Amyloid Program, USA.
Luis Del Pozo-YaunerDepartment of Pathology, University of South Alabama, Mobile, AL, USA.
R L ComenzoTufts Medicine Myeloma and Amyloid Program, USA.

Funding

Screening for AL Amyloidosis in Smoldering Multiple MyelomaR01CA279808 · NCI · TUFTS MEDICAL CENTER · PI Raymond Luke Comenzo · 2024 to 2026
$2.3M
NCI NIH HHS R01 CA279808
6 · The paper itself

Abstract

Background: Light chain research is hampered by lack of mammalian cell lines producing human light chains (FLC). Therefore, we used heterohybridoma (HH) technology to produce clones making FLC thereby providing tools to study light chain behavior. Methods: Marrow CD138+ cells from patients with multiple myeloma (MM) and polyclonal gammopathy (PG) were selected, fused with B5-6 T cells and cultured in hypoxanthine-aminopterin-thymidine medium (HAT). HH clones were selected based on ELISA for human immunoglobulins and flow cytometry for intracellular (IC) FLC. We compared marrow cell counts and HH yields by diagnosis, evaluated clones making only FLC by flow and by dimer/monomer (D/M) ratios in vitro and in vivo, and sequenced FLC genes with RT-PCR. Results: Marrows from 13 patients with active disease, 10 MM and 3 PG, were no different in mononuclear or CD138-selected cell counts. HH FLC clones (7 λ, 1 κ) were obtained from 5/10 MM and 2/3 PG; one PG case produced 2 HH FLC clones (one λ and one κ). Of the 10 MM cases, 8 had high risk cytogenetic features and 4 of the 8 produced HH clones while of the 3 PG cases 2 had negative cytogenetics and 1 had loss of IgH identified and produced an HH clone. Mononuclear (MNC) and CD138-selected cell numbers were markedly higher in the samples that enabled productive fusions. Median MFI for the 8 HH clones by IC flow for FLC was 9849 (range, 5344-27451) and median percentage of cells IC positive was 88 % (69-95). Medians of in vitro and in vivo FLC production were 47 μg/mL (9-80) per million cells after 2 days of culture and 66.4 μg/mL (16-1100) in NOD-SCID γ (NSG) mice 14 days after intraperitoneal (IP) implants of 2 × 10 Conclusions: B5-6 T HH producing human FLC were obtained from 50 % of MM and PG cases. High numbers of MNC and CD138+ cells enabled productive fusions. The HH clones produced FLC with easily appreciated dimers and monomers in vitro and in vivo. With IP in vivo implants after 2 weeks more dimers were seen than in short term cultures in vitro. These HH clones will be made available for study of FLC metabolism and testing of therapeutics designed to abrogate FLC production or enable FLC clearance in vivo.

Indexed as

CD138HeterohybridomasImmunoglobulin light chainsPlasma cells

Identifiers

PMID40330075
PMCPMC12051113

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