This MCQ module is based on: Animal Tissues
Animal Tissues
This assessment will be based on: Animal Tissues
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Animal Tissues
7.1 Introduction — Structural Organisation in Animals
All complex animals consist of only four basic types of tissues. These tissues are organised in specific proportions and patterns to form organs like stomach, lung, heart and kidney. When two or more organs perform a common function by their physical and/or chemical interaction, they together form organ system, e.g., digestive system, respiratory system, etc.
Cells, tissues, organs and organ systems split up the work in a manner that exhibits division of labour and contribute to the survival of the body as a whole. We will study the structure and function of these tissues in the context of the body plan of organisms.
7.2 Animal Tissues — The Four Basic Types
The structure of the cells vary according to their function. Therefore, the tissues are different and are broadly classified into four types:
- Epithelial tissue — covers and lines surfaces.
- Connective tissue — supports, binds, and protects.
- Muscular tissue — produces movement by contraction.
- Neural (nervous) tissue — receives stimuli and conducts impulses.
7.2.1 Epithelial Tissue
An epithelial tissue has a free surface, which faces either a body fluid or the outside environment and thus provides a covering or a lining for some part of the body. The cells are compactly packed with little intercellular matrix. There are two types of epithelial tissues namely simple epithelium and compound epithelium. Simple epithelium is composed of a single layer of cells, while compound epithelium consists of two or more cell layers.
A. Simple Epithelium
Simple epithelium is further divided into three types based on cell shape and function:
| Type | Cell shape | Function | Location |
|---|---|---|---|
| Squamous | Flat, irregular, tile-like | Diffusion, filtration, secretion | Walls of blood vessels, alveoli of lungs (forming a thin lining) |
| Cuboidal | Cube-shaped | Secretion and absorption | Ducts of glands, tubular parts of nephron (e.g., proximal convoluted tubule, PCT) |
| Columnar | Tall and slender (column-like) | Secretion and absorption | Lining of stomach and intestine (often with microvilli) |
When columnar or cuboidal cells bear cilia on their free surface, they are called ciliated epithelium. Their function is to move particles or mucus in a specific direction over the epithelium. They are mainly present in the inner surface of hollow organs like bronchioles and fallopian tubes.
B. Glandular Epithelium
Some of the columnar or cuboidal cells get specialised for secretion and are called glandular epithelium. They are mainly of two types:
- Unicellular, consisting of isolated glandular cells (goblet cells of the alimentary canal).
- Multicellular, consisting of cluster of cells (salivary gland).
On the basis of the mode of pouring of their secretions, glands are divided into two categories:
- Exocrine glands — secrete mucus, saliva, earwax, oil, milk, digestive enzymes and other cell products. These products are released through ducts or tubes.
- Endocrine glands — do not have ducts. Their products are called hormones, secreted directly into the fluid bathing the gland (blood).
C. Compound Epithelium
Compound epithelium is made of two or more cell layers (multilayered) and thus has limited role in secretion and absorption. Their main function is to provide protection against chemical and mechanical stresses. They cover the dry surface of the skin, the moist surface of buccal cavity, pharynx, inner lining of ducts of salivary glands and of pancreatic ducts.
Cell Junctions in Epithelia
All cells in an epithelium are held together with little intercellular material. In nearly all animal tissues, specialised junctions provide both structural and functional links between its individual cells. Three types of cell junctions are found in the epithelium and other tissues:
- Tight junctions help to stop substances from leaking across a tissue.
- Adhering junctions perform cementing to keep neighbouring cells together.
- Gap junctions facilitate the cells to communicate with each other by connecting the cytoplasm of adjoining cells, for rapid transfer of ions, small molecules and sometimes big molecules.
7.2.2 Connective Tissue
Connective tissues are most abundant and widely distributed in the body of complex animals. They are named so because of their special function of linking and supporting other tissues/organs of the body. They range from soft connective tissues to specialised types, which include cartilage, bone, adipose, and blood. In all connective tissues except blood, the cells secrete fibres of structural proteins called collagen or elastin. The fibres provide strength, elasticity and flexibility to the tissue. These cells also secrete modified polysaccharides, which accumulate between cells and fibres and act as matrix (ground substance).
Connective tissues are classified into three types:
- Loose connective tissue
- Dense connective tissue
- Specialised connective tissue (cartilage, bone, blood)
A. Loose Connective Tissue
Loose connective tissue has cells and fibres loosely arranged in a semi-fluid ground substance. There are two types:
- Areolar tissue is present beneath the skin and acts as a support framework for epithelium. Contains fibroblasts, macrophages and mast cells.
- Adipose tissue stores fats; located beneath the skin. Cells (adipocytes) are specialised to store fats. Excess of nutrients which are not used immediately are converted into fats and stored.
B. Dense Connective Tissue
Fibres and fibroblasts are compactly packed in dense connective tissues. Orientation of fibres show a regular or irregular pattern:
- Dense regular — collagen fibres are present in rows between many parallel bundles of fibres. Tendons (attach skeletal muscles to bones) and ligaments (attach one bone to another) are examples.
- Dense irregular — fibroblasts and many fibres (mostly collagen) oriented differently. Present in skin (dermis).
C. Specialised Connective Tissue — Cartilage, Bone, Blood
Cartilages are specialised connective tissues. The intercellular material of cartilage is solid and pliable and resists compression. Cells of this tissue (chondrocytes) are enclosed in small cavities within the matrix secreted by them. Most of the cartilages in vertebrate embryos are replaced by bones in adults. Cartilage is present in the tip of nose, outer ear joints, between adjacent bones of the vertebral column, limbs and hands in adults.
Bones have a hard and non-pliable ground substance rich in calcium salts and collagen fibres which give the bone its strength. They are the main tissues that provide structural frame to the body. Bones support and protect softer tissues and organs. Bone cells (osteocytes) are present in the spaces called lacunae. Limb bones, such as the long bones of the legs, serve weight-bearing functions. They also interact with skeletal muscles attached to them to bring about movements.
Blood is a fluid connective tissue containing plasma, red blood cells (RBC), white blood cells (WBC) and platelets. It is the main circulating fluid that helps in the transport of various substances.
| Type | Matrix nature | Major cells | Special role |
|---|---|---|---|
| Cartilage | Solid, pliable (chondroitin) | Chondrocytes in lacunae | Smooth joint surfaces, embryonic skeleton |
| Bone | Solid, hard (Ca-salts + collagen) | Osteocytes in lacunae | Support, protection, locomotion |
| Blood | Liquid (plasma) | RBC, WBC, platelets | Transport of O₂, CO₂, nutrients, wastes, hormones |
7.2.3 Muscle Tissue
Each muscle is made of many long, cylindrical fibres arranged in parallel arrays. These fibres are composed of numerous fine fibrils, called myofibrils. Muscle fibres contract (shorten) in response to stimulation, then relax (lengthen) and return to their uncontracted state in a coordinated fashion. Their action moves the body to adjust to the changes in the environment and to maintain the positions of the various parts of the body. In general, muscles play an active role in all the movements of the body. Muscles are of three types:
| Feature | Skeletal | Smooth (visceral) | Cardiac |
|---|---|---|---|
| Shape | Long, cylindrical, unbranched | Spindle-shaped (fusiform) | Branched, cylindrical |
| Striations | Present (striated) | Absent (non-striated) | Present (striated) |
| Nuclei | Many (multinucleate) | Single, central | Single, central |
| Control | Voluntary | Involuntary | Involuntary |
| Fatigue | Fatigues quickly | Does not fatigue easily | Does not fatigue |
| Junctions | — | — | Intercalated discs |
| Location | Attached to skeletal bones | Stomach, intestine, blood vessel walls | Heart wall only |
Skeletal muscle is closely attached to skeletal bones. In a typical muscle such as the biceps, striated (striped) muscle fibres are bundled together in a parallel fashion. Smooth muscle fibres taper at both ends (fusiform) and do not show striations. Cell junctions hold them together and they are bundled together in a connective tissue sheath. The wall of internal organs such as the blood vessels, stomach and intestine contains this type of muscle tissue. Smooth muscles are 'involuntary' as their functioning cannot be directly controlled.
Cardiac muscle tissue is a contractile tissue present only in the heart. Cell junctions fuse the plasma membranes of cardiac muscle cells and make them stick together. Communication junctions (intercalated discs) at some fusion points allow the cells to contract as a unit, i.e., when one cell receives a signal to contract, its neighbours are also stimulated to contract.
7.2.4 Neural Tissue
Neural tissue exerts the greatest control over the body's responsiveness to changing conditions. Neurons, the unit of neural system are excitable cells. The neuroglial cells which constitute the rest of the neural system protect and support neurons. Neuroglia make up more than one-half the volume of neural tissue in our body.
When a neuron is suitably stimulated, an electrical disturbance is generated which swiftly travels along its plasma membrane. Arrival of the disturbance at the neuron's endings, or output zone, triggers events that may cause stimulation or inhibition of adjacent neurons and other cells.
Interactive: Tissue Identifier
Select observed features under the microscope and identify the tissue.
Tissue: —
Pick the features above.
Setup: A prepared slide of cross-section of mammalian trachea under low and high power of the compound microscope.
Predict: Which epithelium will line the inner surface? Why is this type adapted to a respiratory tube?
- Identify the inner-most lining (epithelium).
- Note the cell shape — are they short and cube-like, or tall and column-like?
- At the apical (free) surface, are there hair-like projections?
- Sketch a single epithelial cell and label nucleus, cytoplasm, basement membrane, and cilia (if present).
Reasoning: The cilia beat upward in a coordinated wave to push trapped dust + mucus toward the pharynx (the mucociliary escalator), keeping the lungs clean. Goblet cells produce the sticky mucus that traps particles. This combination is the body's first line of defence against inhaled pollutants.
7.3 Worked Examples
Worked Example 1: Cell Junctions
The lining of the small intestine must (a) prevent gut bacteria from entering the bloodstream and (b) coordinate rhythmic contractions of smooth muscle. Which kinds of cell junctions enable each function?
(b) Gap junctions between adjacent smooth muscle cells in the intestinal wall pass ionic signals quickly so that all cells contract together as a sheet — producing the wave-like peristalsis that moves food.
A third type, adhering junctions, glue the cells together but do not seal or signal.
Worked Example 2: Why no cell division in cardiac muscle?
Heart attack survivors often have permanent damage because dead cardiac muscle is not replaced. Explain in terms of the tissue's properties.
Worked Example 3: Bone vs Cartilage
A young child's skeleton appears mostly white on X-ray, but parts of it (like the ends of long bones) appear darker. Why?
Competency-Based Questions
Q1. Which of the following is the most abundant connective tissue in the human body? L1 Remember
Q2. Identify the tissue that lines the inner surface of bronchioles and fallopian tubes. L2 Understand
Q3. Apply: Tendons attach muscles to bones, while ligaments attach bones to bones. Although both look like white cords, which one would you expect to stretch slightly more, and why? L3 Apply
Q4. Analyse: Why are smooth muscles called 'involuntary' and not 'unconscious'? L4 Analyse
Q5. Create: Imagine a hypothetical animal whose only connective tissue is blood. List two biological problems this animal would face. L6 Create
1. No structural support — without bone or cartilage, the body could not maintain shape against gravity (it would collapse like jelly).
2. No attachment system — without tendons/ligaments, muscles could not pull on the skeleton, so there would be no coordinated movement.
3. No energy storage — without adipose tissue, fasting would quickly exhaust glycogen reserves leading to starvation.
4. No insulation/cushioning — without areolar/adipose padding, internal organs could be easily damaged by physical impacts.
Assertion–Reason Questions
Choose: (A) Both true, R explains A. (B) Both true, R doesn't explain A. (C) A true, R false. (D) A false, R true.
A: Cardiac muscle contracts as a single unit.
R: Intercalated discs between cardiac muscle cells allow electrical impulses to spread between cells.
A: Squamous epithelium is found in alveoli of lungs.
R: Flat squamous cells provide minimum distance for the diffusion of gases.
A: Blood is classified as a connective tissue.
R: Blood cells are connected to each other by intercellular junctions.