Q.Differentiate between: Innate immunity and Acquired immunity (restrict the answer to 3 or 4 important differences).
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Immunity and the Immune Response
Immunity is the ability of the body to resist and eliminate pathogens. It is broadly of two kinds. Innate (non-specific) immunity is present from birth and includes physical barriers (skin, mucus), phagocytes, natural killer (NK) cells, interferons and the complement system. Acquired (adaptive, specific) immunity develops after exposure to an antigen and shows specificity and memory.
Adaptive immunity has two arms. In humoral immunity, B-lymphocytes differentiate into plasma cells that secrete antibodies (immunoglobulins). In cell-mediated immunity (CMI), cytotoxic T-cells destroy infected cells by releasing perforins and granzymes. Antigen-presenting cells display peptides on MHC-II, while all nucleated cells carry MHC-I. Cytokines such as interleukins and interferons regulate and coordinate the response. …
The immune system relies on two fundamentally different defence strategies — one broad and immediate, the other narrowly targeted and built up gradually — distinguished by their specificity, their onset, and whether they retain memory of past exposures. …
Innate immunity is non-specific and present from birth; acquired immunity is pathogen-specific, develops after exposure, and has immunological memory.
Differences between innate and acquired immunity:
- Specificity: Innate immunity provides a generalised, non-specific defence against any foreign agent; acquired immunity is highly specific to a particular pathogen/antigen.
- Onset: Innate immunity is present since birth as the body's first line of defence; acquired immunity develops only after the body is exposed to a pathogen or vaccine.
- Mediators/barriers: Innate immunity works through physical barriers (skin, mucus), physiological barriers (acid in stomach, saliva, tears), cellular barriers (phagocytes such as neutrophils and macrophages, NK cells) and cytokine barriers (interferons); acquired immunity is mediated by lymphocytes - B-cells (humoral immunity, antibody production) and T-cells (cell-mediated immunity). …
- CBSE 2026Set 57/1/11 markMCQQ.Which of the following is not a component of immune system ? (A) Lymphocytes (B) Plasma Proteins (C) Red Blood Cells (D) Bone Marrow
›Reveal solutionSolution
Red Blood Cells are primarily responsible for oxygen transport and are not considered a direct component of the immune system.
The human body possesses a sophisticated immune system, a complex network of cells, tissues, and organs that work together to protect the body from harmful substances like pathogens (bacteria, viruses, fungi, parasites) and cancerous cells. This system distinguishes between "self" and "non-self" and mounts a defense against invaders. Understanding its components is crucial to appreciating how our body fights disease.
Let's examine each option in the context of the immune system:
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Lymphocytes: These are a specific type of white blood cell (leukocyte) and are central to the adaptive immune response. There are two main types:
- B lymphocytes (B cells): These cells mature in the bone marrow and are responsible for humoral immunity. Upon activation, they differentiate into plasma cells, which produce and secrete antibodies. Antibodies are proteins that specifically target and neutralize pathogens or mark them for destruction by other immune cells.
- T lymphocytes (T cells): These cells originate in the bone marrow but mature in the thymus. They are involved in cell-mediated immunity. Different types of T cells have distinct roles, such as cytotoxic T cells that directly kill infected cells or cancer cells, and helper T cells that coordinate the immune response by activating other immune cells.
ImportantLymphocytes are the key players in specific immunity, providing memory and targeted responses against pathogens.
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Plasma Proteins: Blood plasma, the liquid component of blood, contains numerous proteins, many of which play vital roles in immunity.
- Antibodies (Immunoglobulins): As mentioned, these are produced by plasma cells (differentiated B cells) and are crucial for identifying and neutralizing foreign invaders. They circulate in the plasma.
- Complement Proteins: This is a group of about 30 different proteins that circulate in the plasma in an inactive form. When activated, they work in a cascade to enhance the immune response, for example, by directly lysing (bursting) pathogens, attracting phagocytes, or coating pathogens to make them easier for phagocytes to engulf.
- Acute-phase proteins: These proteins, such as C-reactive protein, are produced by the liver in response to inflammation and infection, aiding in the innate immune response.
NoteWhile not all plasma proteins are directly immune-related (e.g., albumin for osmotic balance, fibrinogen for clotting), the presence of antibodies and complement proteins makes plasma proteins an integral part of the immune system. …
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- CBSE 2026Set V11 markMCQQ.The molecules trapped in the lymph nodes responsible for the activation of lymphocytes present there and cause the immune response are(a) Antibodies(b) Anti-histamines(c) Antigens(d) Interferons
›Reveal solutionSolution
Antigens trapped in lymph nodes activate lymphocytes and trigger the immune response.
Lymph nodes act as filters that trap microbes and other antigens in the tissue fluid/lymph. These trapped antigens activate the lymphocytes stationed there, causing the immune response. Antibodies are the products of this r …
- CBSE 2025Set 57/4/11 markMCQQ.The technique for the early detection of a disease based on the principle of antigen-antibody interaction is : (A) RNAi (B) EST (C) PCR (D) ELISA
›Reveal solutionSolution
ELISA exploits the specific binding between antigen and antibody to detect disease markers; the answer is (D).
When we want to catch a disease early—before symptoms appear—we need a technique sensitive enough to detect tiny amounts of a pathogen or its markers in blood or tissue. The immune system's exquisite specificity gives us that tool: antibodies bind only to their matching antigens with lock-and-key precision. ELISA (Enzyme-Linked Immunosorbent Assay) harnesses this principle by using antibodies tagged with enzymes that produce a visible color change when the target antigen is present.
The logic is elegant. If a patient has been infected, either the pathogen's antigens or the antibodies the patient produced against it will be in their sample. ELISA can detect either one. The enzyme amplifies the signal—even a small amount of antigen-antibody binding triggers enough enzyme activity to generate a measurable color, making the test both specific and sensitive.
Now let's see why the other options don't fit:
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RNAi (RNA interference) is a gene-silencing mechanism where small RNA molecules block the expression of specific genes. It's a research tool and potential therapy, not a diagnostic test. It doesn't involve antigen-antibody interaction at all.
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EST (Expressed Sequence Tags) are short DNA sequences from cDNA libraries used to identify genes that are actively expressed in a tissue. This is a genomics technique for gene discovery, unrelated to immunological detection. …
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- CBSE 2021Set D1 markMCQQ.The substances to which an immune response is produced, are called(a) Allergens(b) Vaccines(c) Antibodies(d) Antigens
›Reveal solutionSolution
Any foreign molecule that induces an immune (antibody) response is an antigen, so the answer is (D).
An antigen is any substance (usually a foreign protein or polysaccharide) that, on entering the body, is recognised as non-self and induces a specific immune response, including the production of antibodies.
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- CBSE 2020Set OC_ZOOLOGY1 markMCQQ.Antibodies are produced by(a) leucocytes(b) lymphocytes(c) erythrocytes(d) platelets
›Reveal solutionSolution
Antibody production is a function of the lymphoid lineage of white blood cells, specifically B-lymphocytes, which is why lymphocytes is the correct answer among the leukocyte types listed.
Which blood cells make antibodies?
Blood contains several types of leukocytes (white blood cells): neutrophils, eosinophils, basophils, monocytes and lymphocytes. Among these:
- Lymphocytes are of two main types — B-lymphocytes and T-lymphocytes. On encountering an antigen, B-lymphocytes proliferate and differentiate into plasma cells, which are the actual antibody-secreting factories of the body (this is the basis of humoral/antibody-mediated immunity). T-lymphocytes mediate cell-mediated immunity and also help regulate B-cell responses.
- Erythrocytes (RBCs) transport oxygen/carbon dioxide and have no role in antibody production. …
- CBSE 2018Set ANNUAL1 markQ.Name the test which is based on the principle of the Antigen-Antibody interaction.
›Reveal solutionSolution
ELISA is a widely used diagnostic technique that detects the presence of a pathogen (or antibodies against it) in a patient's serum by exploiting the highly specific binding between antigens and antibodies.
ELISA (Enzyme-Linked Immunosorbent Assay) is based on the principle of antigen-antibody interaction. It is used for the early diagnosis of diseases, including detection of pathogen antigens (via specific antibodies) or antibodies produced against a pathogen in a patient's serum sample. This test forms the basis for detecting infections such as HIV (AIDS), where the presenc …
- CBSE 2018Set ZOOLOGY1 markMCQQ.All antigens(a) are microorganisms(b) are not microorganisms(c) react against transplant(d) do not react against transplant
›Reveal solutionSolution
An antigen is defined functionally — as any substance capable of triggering a specific immune response — not structurally as "a microorganism"; many antigens (graft/transplant proteins, toxins, pollen grains) are entirely non-microbial.
Reasoning
An antigen is any substance (most often a protein or polysaccharide) that the immune system recognises as foreign and against which it can mount a specific response (e.g. antibody production). While many antigens are indeed derived from disease-causing microorganisms (surface proteins of bacteria/viruses), this is not a universal requirement — the immune system also responds to non-microbial antigens, such as the "foreign" cell-surface proteins on a transplanted organ (which trigger graft rejection), snake venom toxins, or pollen grains (causing allergies). This is why not all antigens are microorganisms.
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