Multiple Myeloma Cells

Multiple myeloma cells are malignant, antibody-producing plasma cells that accumulate in the bone marrow and drive a blood cancer through abnormal growth and survival. Their biology reflects altered molecular signaling, regulation of protein synthesis, and secretion of monoclonal immunoglobulin, while interactions with bone-marrow stromal cells can support proliferation and change the surrounding tissue. In chemistry and biomedical research, these cells provide a model for studying protein folding, drug-target interactions, and compounds that disrupt survival pathways or induce programmed cell death. Their analysis supports biomarker development, therapeutic screening, and the design of more selective treatments for myeloma.

Multiple Myeloma Cells - Related Videos

Research

JoVE Journal - Medicine

An Organotypic High Throughput System for Characterization of Drug Sensitivity of Primary Multiple Myeloma Cells

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Cited by 29 •

2015

We describe a high-throughput drug sensitivity assay for primary multiple myeloma cells. It consists of a reconstruction of the bone marrow microenvironment (including extracellular matrix and stroma) in multi-well plates, and a non-invasive method for longitudinal quantification of cell viability.

Establishment of a Human Multiple Myeloma Xenograft Model in the Chicken to Study Tumor Growth, Invasion and Angiogenesis

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Cited by 16 •

2015

Human multiple myeloma (MM) cells require the supportive microenvironment of mesenchymal cells and extracellular matrix components for survival and proliferation. We established an in vivo chicken embryo model with engrafted human myeloma and mesenchymal cells to study effects of cancer drugs on tumor growth, invasion and angiogenesis.

Interphase Fluorescence in situ Hybridization of Bone Marrow Smears of Multiple Myeloma

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Cited by 2 •

2022

Here, we present a protocol for improving the success of interphase fluorescence in situ hybridization detection on bone marrow smears from multiple myeloma patients.

Repression of Multiple Myeloma Cell Growth In Vivo by Single-wall Carbon Nanotube (SWCNT)-delivered MALAT1 Antisense Oligos

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Cited by 17 •

2018

This manuscript describes the synthesis of a single-wall carbon nanotube (SWCNT)-conjugated MALAT1 antisense gapmer DNA oligonucleotide (SWCNT-anti-MALAT1), which demonstrates the reliable delivery of the SWCNT and the potent therapeutic effect of anti-MALAT1 in vitro and in vivo. Methods used for synthesis, modification, conjugation, and injection of SWCNT-anti-MALAT1 are described.

Multimodal Bioluminescent and Positronic-emission Tomography/Computational Tomography Imaging of Multiple Myeloma Bone Marrow Xenografts in NOG Mice

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Cited by 3 •

2019

Here we use bioluminescent, X-ray, and positron-emission tomography/computed tomography imaging to study how inhibiting mTOR activity impacts bone marrow-engrafted myeloma tumors in a xenograft model. This allows for physiologically relevant, non-invasive, and multimodal analyses of the anti-myeloma effect of therapies targeting bone marrow-engrafted myeloma tumors in vivo.

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