H-2Kb-ADSCs
Construct Patternlentiviral transduction was used to generate adipose-derived MSCs (ADSCs) from DBA/2J (H-2d) mice which expressed an allogeneic class I MHC protein (H-2Kb).
Browse the toolkit beneath workflows. The mechanism branch runs mechanism -> architecture -> component, while the technique branch runs from high-level approaches down to concrete methods.
4 items matching 1 filter
Mechanism Branch
Layer 1
Mechanisms
Top-level concepts: biophysical action modes such as heterodimerization, photocleavage, or RNA binding.
Layer 2
Architectures
Arrangements that realize or deploy mechanisms, including switches, construct patterns, and delivery strategies.
Layer 3
Components
Low-level parts and sequence-defined elements used inside architectures, including protein domains and RNA elements.
Technique Branch
Layer 1
Approaches
High-level engineering practices such as computational design, directed evolution, sequence verification, and functional assay.
Layer 2
Methods
Concrete methods used to design, build, verify, or characterize engineered systems.
Showing 1-4 of 4
lentiviral transduction was used to generate adipose-derived MSCs (ADSCs) from DBA/2J (H-2d) mice which expressed an allogeneic class I MHC protein (H-2Kb).
Engineered bacteriophages are emerging as a promising class of precision antimicrobials... Advances in synthetic biology and nanotechnology have made it possible to redesign phages with enhanced specificity, expanded functionality, and improved stability, positioning them as versatile tools for microbiota-centered therapies.
Self-assembling peptidic hydrogels are uniquely suited for this setting because their molecular programmability, supramolecular order, and tissue-conforming mechanics enable both precision drug delivery and immune modulation.
the exploration of biomimetic liposomes has revealed their potential in targeted therapy, immune camouflage, immune modulation, gene delivery and vaccine development