Scientific Library
Autofluorescence in Polymorphonuclear Neutrophils: A New Tool for Early Infection Diagnosis (Monsel A et al. - PLoS One 2014)
Analysis of Autofluorescence in Polymorphonuclear Neutrophils: A New Tool for Early Infection Diagnosis by Monsel A et al.
Choose your complement!
The complement system helps the ability of antibodies and phagocytic cells to clear pathogens from an organism. It is part of the innate immune system that is not adaptable and does not change over the
Human oligodendrocyte MO3.13 cells & Globoid cell leukodystrophy
In this paper (Role of extracellular calcium and mitochondrial oxygen species in psychosine-induced oligodendrocyte cell death), Voccoli et al. used Human oligodendrocyte MO3.13 cells to study Globoid
Capping, bundling, sequestering... the role of Actin Binding Proteins
Actin binding proteins (ABPs) have a wide variety of functions in regulating the cellular function of actin. They control G-actin polymerization but also drive actin filaments severing and cross-linking
Why is the hCMEC/D3 cell line a robust in vitro BBB model?
The Blood-Brain Barrier (BBB) affects the development of drugs for all pathologies (brain exposure to drugs, side effects...). In the early phases of drug development, there is a strong need for stable
5 multicolour flow cytometry reagents for immunophenotyping
Multicolour fluorochrome reagents have spurred researchers' capacity to analyze cell populations and to isolate cell subsets by flow cytometry. In this post, let's take at look at the advantages of
2 new validated anti-PGP 9.5 antibodies for neuroscience research
Protein Gene Product 9.5 (PGP 9.5) is an abundant cytoplasmic neuron and neuroendocrine-cell specific protein. Over the years, this deubiquitinating enzyme (a.k.a. Ubiquitin Carboxy-terminal Hydrolase
Lympholyte®: The ideal tool for simple and viable lymphocytes isolation
High quality isolation of lymphocytes is a key step in many in vitro research programs covering immunology, infectious diseases and oncology. To simplify this step, CEDARLANE® have developed an efficient
Reprogramming stem cells: a new innovative technology for the development of consistent and functional human cells
To overcome current cell model limitations, bit.bio have developed a new, innovative technology to reprogram human stem cells with precise control of transcription factor expression through iPSC engineering.
Consistent, scalable human iPSC-derived glutamatergic neurons and skeletal myocytes
As detailed in a separate post, bit.bio have developed a novel cellular reprogramming technology, opti-ox™1 (optimized inducible overexpression), that can generate functional cells with high consistency