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CSIR NET Life Sciences Cell communication and cell signaling Flashcards
53 question-and-answer cards covering Cell communication and cell signaling as it is examined in CSIR NET Life Sciences. 24 of them are printed below, taken from across the deck — no signup, no paywall on the preview.
24 sample cards from the Cell communication and cell signaling deck
Sampled from the end of the deck, so these are different cards from the ones shown on the syllabus page.
Compare the intrinsic and extrinsic pathways of apoptosis.
Intrinsic (mitochondrial): internal stress causes cytochrome c release, apoptosome (Apaf-1) formation, activating caspase-9. Extrinsic (death receptor): ligands (FasL/TNF) bind death receptors forming DISC, activating caspase-8. Both converge on executioner caspases (caspase-3).
What is the role of the Bcl-2 family in apoptosis?
It regulates mitochondrial outer membrane permeabilization: anti-apoptotic members (Bcl-2, Bcl-xL) inhibit cytochrome c release, while pro-apoptotic members (Bax, Bak, Bad, Bid) promote it. The balance determines cell fate.
Name therapeutic strategies against uncontrolled cell growth (cancer).
Cytotoxic chemotherapy, radiation, targeted therapies (kinase inhibitors like imatinib, monoclonal antibodies like trastuzumab/rituximab), anti-angiogenesis (bevacizumab), hormone therapy, and immunotherapy (checkpoint inhibitors, CAR-T).
How do pathogens recognize and enter host cells?
Pathogens use surface adhesins/ligands binding host receptors, then enter by receptor-mediated endocytosis, membrane fusion (enveloped viruses), or by injecting effectors (Type III/IV secretion in bacteria) that trigger uptake (e.g., Salmonella 'trigger', Yersinia 'zipper' mechanisms).
How do pathogens alter host cell behavior?
They inject/secrete effector proteins that hijack host signaling—remodeling the cytoskeleton, modulating vesicle trafficking, blocking apoptosis or inducing it, suppressing immune signaling, and reprogramming gene expression to favor survival and replication.
Give examples of pathogen-induced diseases in plants and animals.
Plants: bacterial blight (Xanthomonas), crown gall (Agrobacterium), tobacco mosaic virus, late blight (Phytophthora). Animals: tuberculosis (Mycobacterium), foot-and-mouth disease (virus), trypanosomiasis (Trypanosoma).
What is cell-cell fusion and where does it occur normally vs abnormally?
Fusion of two cells into one multinucleate cell. Normal: fertilization, myoblast fusion (muscle), trophoblast (placenta), osteoclast formation. Abnormal: virus-induced syncytia (e.g., measles, HIV), and tumor cell fusion contributing to malignancy.
What cells and molecules mediate innate immunity?
Cells: macrophages, neutrophils, dendritic cells, NK cells, mast cells. Molecules: pattern recognition receptors (TLRs), complement, cytokines, antimicrobial peptides, acute-phase proteins. It is rapid, non-specific, with no memory.
How does adaptive immunity differ from innate immunity?
Adaptive immunity is antigen-specific, slower, mediated by B and T lymphocytes with diverse receptors generated by gene rearrangement, and produces immunological memory. Innate immunity is fast, germline-encoded, non-specific, and lacks memory.
Define antigen, antigenicity, and immunogenicity.
Antigen: a molecule recognized by antibodies/receptors. Antigenicity: ability to be specifically bound by antibodies/TCR. Immunogenicity: ability to induce an immune response. All immunogens are antigens, but not all antigens (e.g., haptens) are immunogens.
What is the difference between B-cell and T-cell epitopes?
B-cell epitopes are often conformational (3D surface determinants) recognized by antibodies/BCR in native antigen. T-cell epitopes are linear peptides generated by antigen processing and presented on MHC molecules to the TCR.
Describe the basic structure of an antibody (IgG).
A Y-shaped molecule of two identical heavy chains and two identical light chains linked by disulfide bonds; each chain has variable (V) and constant (C) regions. Fab fragments contain antigen-binding sites; Fc mediates effector functions. Hypervariable CDRs form the binding site.
List the five antibody isotypes and a key function of each.
IgG (most abundant, secondary response, crosses placenta), IgM (first produced, pentamer, agglutination/complement), IgA (mucosal/secretory, dimer), IgE (allergy, parasites, mast cells), IgD (mature B-cell surface receptor).
How is antibody diversity generated?
By V(D)J recombination (combinatorial joining of gene segments via RAG1/RAG2), junctional diversity (imprecise joining, TdT-added N-nucleotides), combinatorial heavy/light chain pairing, and somatic hypermutation (affinity maturation, via AID).
What are monoclonal antibodies and how are they classically produced?
Identical antibodies from a single B-cell clone with a single specificity. Produced by the hybridoma technique: fusing antigen-primed B cells with immortal myeloma cells, then HAT selection and screening for the desired clone.
What is antibody engineering (give examples)?
Genetic modification of antibodies to improve clinical use: chimeric (mouse V + human C), humanized (only CDRs from mouse), fully human antibodies, single-chain Fv (scFv) fragments, and bispecific antibodies.
Compare MHC class I and class II molecules.
MHC I (on all nucleated cells) presents endogenous peptides (8-10 aa) to CD8+ T cells; structure: alpha chain + beta2-microglobulin. MHC II (on APCs) presents exogenous peptides (13-25 aa) to CD4+ T cells; structure: alpha + beta chains.
Describe antigen processing for MHC class I vs class II.
Class I: cytosolic proteins degraded by the proteasome, peptides transported by TAP into the ER, loaded onto MHC I. Class II: extracellular proteins endocytosed, degraded in endosomes/lysosomes, loaded onto MHC II after invariant chain (CLIP) removal by HLA-DM.
What signals are required for T-cell activation?
Signal 1: TCR recognition of peptide-MHC (with CD4/CD8 co-receptor). Signal 2: co-stimulation (CD28 on T cell binding B7/CD80-86 on APC). Signal 3: cytokines directing differentiation. Without signal 2, T cells become anergic.
What is the complement system and its three activation pathways?
A cascade of serum proteins enhancing immunity via opsonization, inflammation, and the membrane attack complex (MAC, C5b-9) for lysis. Pathways: classical (antibody-antigen/C1q), lectin (MBL binding mannose), and alternative (spontaneous C3 hydrolysis); all converge at C3 convertase.
What are Toll-like receptors (TLRs) and what do they recognize?
Pattern recognition receptors of innate immunity that detect PAMPs—e.g., TLR4 (LPS), TLR5 (flagellin), TLR3 (dsRNA), TLR9 (CpG DNA). They signal via MyD88/TRIF to activate NF-kB, inducing inflammatory cytokines.
Compare humoral and cell-mediated immune responses.
Humoral immunity: B cells/plasma cells produce antibodies against extracellular pathogens/toxins. Cell-mediated immunity: T cells—CD8+ CTLs kill infected cells, CD4+ Th cells coordinate responses—target intracellular pathogens.
What are the four types of hypersensitivity reactions?
Type I: immediate/IgE-mediated (allergy, anaphylaxis). Type II: antibody-mediated cytotoxic (IgG/IgM vs cell-surface antigens). Type III: immune-complex mediated. Type IV: delayed-type, T-cell mediated (e.g., contact dermatitis, TB skin test).
What is the immune response and immune evasion in HIV infection?
HIV infects CD4+ T cells (via CD4 + CCR5/CXCR4), progressively depleting them and causing AIDS. It evades immunity through high mutation/antigenic variation, latency, and downregulation of MHC I. Responses include neutralizing antibodies and CTLs that ultimately fail to control infection.
What this deck covers
The Cell communication and cell signaling deck follows the CSIR NET Life Sciences Cell communication and cell signaling syllabus — 5 chapters and 54 topics — so questions land on material that is genuinely examinable rather than trivia around it. That works out to roughly 10.6 cards per chapter.
Answers are written to be recallable, not just readable — averaging about 245 characters, which is long enough to carry the reasoning and short enough to say out loud.
A deck like this earns its keep on the second and third pass. Read the syllabus first so you know the shape of the subject, then use the cards to find the specific facts that have not stuck.
Cell communication and cell signaling flashcards FAQ
How many Cell communication and cell signaling flashcards are in this CSIR NET Life Sciences deck?
53 cards. This page previews 24 of them, sampled evenly across the deck so you can judge the difficulty before installing anything.
Are these CSIR NET Life Sciences flashcards free?
Yes. The preview here is free to read with no signup, and the full 53-card deck is free inside the Examius app.
What do the Cell communication and cell signaling cards cover?
They follow the CSIR NET Life Sciences Cell communication and cell signaling syllabus — 5 chapters and 54 topics — so the questions track what is actually examinable.
How should I use these flashcards?
Read the syllabus first so you know the shape of the subject, then drill the deck. Examius schedules each card with spaced repetition, so cards you keep missing come back sooner and ones you know drift further apart.