The Human Cell

1. Structure and Functions of the Cell 

A cell is the basic living structural and functional unit of the body.

Cytology: It is a branch of science concerned with the study of cells.

 Cell theory explains:

a)       All living organisms are composed of cells and cell products.

b)      The cell is the basic unit of structure & function of all living organisms.

c)       All cells come from the division of a pre-existing cell.

d)      An organism as a whole can be understood through the collective activities & interactions of its cells.

We can divide the cell into four principal parts:

  1. Plasma (cell) membrane: it is the outer lining, a limiting membrane separating the cell’s internal parts from extracellular materials & the external environment.
  2. Cytoplasm: cytoplasm is the substance that surrounds organelles and is located between the nucleus and plasma membrane
  3. Organelles: These are permanent structures with characteristic morphology that are highly specialized in specific cellular activity.
  4. Inclusions: they are the secretions and storage products of cells.

Fig. 1: Cell

1.1 Cell membrane (Plasma membrane)

·   Each cell has a limiting boundary: the cell membrane, plasma membrane, or plasmalemma.

·        It is a living membrane, the outermost in animal cells.

·        The plasma membrane maintains the integrity of the cell.

·        It keeps the cell and its contents separate and distinct from the surroundings.

·  It is a double-layered membrane measuring about 4.5 nm and made of phospholipids, cholesterol, glycolipids, & carbohydrates (oligosaccharides).

·     The bilayer is self-sealing. If a needle is inserted and pulled out, it automatically seals.

·    The plasma membrane is made of proteins and lipids, and several models were proposed regarding the arrangement of proteins and lipids. The fluid mosaic model proposed by Singer and Nicholson (1972) is widely accepted.

According to the fluid mosaic model,

  • The plasma membrane is composed of a lipid bilayer of phospholipid molecules into which a variety of globular proteins are embedded.
  • Each phospholipid molecule has two ends: an outer head (hydrophilic, i.e., water-attracting) and an inner tail (pointing centrally hydrophobic, i.e., water-repelling).
  • The protein molecules are arranged in two different ways:

·         Peripheral proteins or extrinsic proteins: these proteins are present on the outer and inner surfaces of the lipid bilayer.

·         Integral proteins or intrinsic proteins: These proteins penetrate the lipid bilayer partially or wholly.

Fig. 2

1.1.1 Functions

· The plasma membrane encloses the cell contents.

·  It provides cell shape (in animal cells), e.g., the characteristic shape of red blood cells, nerve cells, bone cells, etc

· It allows transport of certain substances into and out of the cell but not all substances, so it is termed selectively permeable.

·   Separates cells from one another.

·  Provides an abundant surface on which chemical reactions can occur.

1.2 The Cytoplasm

1.2.1 The Cytoplasm

·         Cytoplasm is a matrix or ground substance in which various cellular components are found.

·         It is a thick, semi-transparent, elastic fluid containing suspended particles and a series of minute tubules and filaments that form the cytoskeleton.

·         Water constitutes 75-90% of the cytoplasm.

·         It also contains solid components, proteins, carbohydrates, lipids, and inorganic substances. 

·         The inorganic components exist as solutions because they are soluble in water.

·         The majority of organic substances, however, are found as colloids. Colloids are particles that remain suspended in the surrounding medium.

The cytoplasm contains many cell organelles, of which we shall learn about:

·         those that trap and release energy, e.g., mitochondria;

·         those that are secretory or involved in synthesis and transport, e.g., Golgi, ribosomes, and endoplasmic reticulum

·         the suicidal bags, i.e., lysosomes

·         the nucleus, which controls all activities of the cell and carries the hereditary material.

 

1.3 CELL ORGANELLES

Organelles are specialized structures with characteristic shapes that have specific functions.

 

1.3.1 Mitochondria

Structure

·         Also called the powerhouse of the cell.

·         Appear as tiny thread-like structures under a light microscope. Approximately 0.5 – 1.00 µm (micrometer)

·         The number is usually a few hundred to a few thousand per cell.

·         It is a small, spherical, rod-shaped, or filamentous structure.

·         It generates energy.

·         Each mitochondrion possesses two membranes; one is a smooth (outer) membrane, and the other is arranged in a series of folds called cristae.

·         The central cavity of a mitochondrion enclosed by the inner membrane is the matrix.

·         Wall made of a double membrane.

·         It contains its own DNA (circular), RNAs, ribosomes, and enzymes.

Function

·       Oxidises pyruvic acid (breakdown product of glucose) to release energy, which gets stored in the form of ATP for ready use. This process is also called cellular respiration.

·         The most important function of the mitochondria is to produce energy.

·         Mitochondria help the cells to maintain proper concentration of calcium ions within the compartments of the cell.

·         The mitochondria also help in building certain parts of blood and hormones like testosterone and estrogen.

·         The liver cells’ mitochondria have enzymes that detoxify ammonia.

·         The mitochondria also play an important role in the process of apoptosis, or programmed cell death.

·         Play an important role in fat metabolism.

Fig. 3: Structure of Mitochondria

1.3.2 Endoplasmic Reticulum (ER)

Structure

·         It is a network of membranes that forms flattened, interconnected sacs called as Cisternae are tubular in structure and forms a three-dimensional polygonal network.

·         They are frequently associated with ribosomes and special proteins called translocons that are necessary for protein translation within the RER.

·         The phospholipid membrane encloses a space, the lumen, from the cytosol, which is continuous with the perinuclear space.

·         The surface of the rough endoplasmic reticulum is studded with the protein-manufacturing ribosomes, which gives it a rough appearance. Hence, it is referred to as the rough endoplasmic reticulum.

·         The smooth endoplasmic reticulum consists of tubules, which are located near the cell periphery. This network increases the surface area for the storage of key enzymes and the products of these enzymes.

·         Rough endoplasmic reticulum synthesizes proteins, while smooth endoplasmic reticulum synthesizes lipids and steroids. It also metabolizes carbohydrates and regulates calcium concentration, drug detoxification, and attachment of receptors on cell membrane proteins.

·         Endoplasmic reticulum varies in extent, extending from the cell membrane through the cytoplasm and forming a continuous connection with the nuclear envelope.

Functions 

·         They play a vital role in the synthesis of proteins, lipids, glycogen, and other steroids like cholesterol, progesterone, testosterone, etc.

·         They provide the increased surface area for cellular reactions.

·         They help in the formation of the nuclear membrane during cell division.

·         They play a vital role in the formation of the skeletal framework.

 

Image result for endoplasmic reticulum diagram

Fig. 4: Endoplasmic Reticulum

 

 

1.3.3 Golgi Body or Golgi Apparatus or Golgi Complex

·         The Golgi apparatus is a series of flat membrane-bound sacs called cisternae.

·         It has two faces: the convex entry cis face (faces the rough ER) and the exit or trans face (faces the plasma membrane).

·         The number of Golgi apparatus differs according to the cell’s secretion activity.

·         The Golgi apparatus is specialized for receiving the molecules of substances secreted by the endoplasmic reticulum across a group of transporting vesicles.

·         Then, it classifies and modifies these vesicles and distributes them to the places where they are used in the cell.

 

1.3.4 Lysosomes (lysis = breaking down; soma = body)

·            Lysosomes are small, round, membranous vesicles formed by Golgi bodies.

·            They contain a group of digestive and hydrolytic enzymes (60 kinds).

·            The lysosomes’ function is to get rid of worn-out cells and organelles that no longer have benefits, a process called autophagy.

·            Furthermore, lysosomes digest the large molecules of nutrients engulfed by the cell and change them into structurally simpler substances to enable the cell to benefit from them.

·            For example, white blood cells use the digestive enzymes present inside the lysosomes to digest and destroy the pathogens that invade the cell.

·            The cell is not affected by the lysosome enzymes because these enzymes are surrounded by a membrane, 

·            Lysosomes are called “suicidal bags,” as enzymes contained in them can digest the cell’s own material when damaged or dead, called autolysis.

 

1.3.5 Ribosome

Structure

·         Situated in two areas of the cytoplasm; few are seen scattered in the cytoplasm, and a few are connected to the endoplasmic reticulum.

·         80S ribosomes, respectively comprising little (40S) and substantial (60S) subunits.

·         Composed of RNA (rRNA) and ribosomal proteins.

·         When joined to the ER, they are called the rough endoplasmic reticulum.

·         The free and the bound ribosomes are very much alike in structure and are associated with protein synthesis.

ribosome

Fig. 5: Ribosome

Functions

·         They assemble amino acids to form specific proteins; proteins are essential to carry out cellular activities.

·         The proteins that are synthesized by the ribosomes present in the cytoplasm are used in the cytoplasm itself. The proteins produced by the bound ribosomes are transported outside the cell.

 

1.3.6 Centriole

It is present in all animal cells, located just outside the nucleus. It is cylindrical, 0.5 µm in length, and without a membrane. It has 9 sets of peripheral tubules but none in the center. Each set has three tubules arranged at definite angles. It has its own DNA and RNA, and therefore it is self-replicating.

Function

Centrioles are involved in cell division. They give orientation to the ‘mitotic spindle,’ which forms during cell division.

 

1.3.7 Peroxisomes

·         They are similar to lysosomes but are smaller and contain several oxidases.

Functions

·         They oxidise amino acids and fatty acids.

·         They oxidise toxic substances, such as alcohol in liver cells.

 

1.3.8 Proteasomes

·         Tiny barrel-shaped structures.

·         Found in the nucleus and cytoplasm.

·         Contains proteases (enzymes that cut the protein into smaller peptides).

Functions

·         They degrade unneeded, damaged, or faulty proteins into smaller peptides.

1.3.9 The Cytoskeleton

·         It is the network of three types of protein filaments, i.e., microfilaments, intermediate filaments, and microtubules.

·         Microfilaments

o   Thin, composed of the protein actin.

o   Help generate movement and provide mechanical support.

o   They are involved in muscle contraction, cell division, and cell locomotion.

o   They anchor the cytoskeleton to integral proteins in the plasma membrane.

·         Intermediate Filaments

o   They are thicker than microfilaments.

o   They provide tensile strength for the cell.

·         Microtubules

o   These largest cytoskeletal components are long, composed of the protein tubulin.

o   They help to determine cell shape.

o   Microtubules also form the spindle fibers for separating chromosomes during mitosis.

o   When arranged in geometric patterns inside flagella and cilia, they are used for locomotion.

1.4 nucleus (the hereditary organelle)

Structure

·         Nucleus is a membrane-bound structure that contains the cell’s hereditary information and controls the cell’s growth and reproduction.

·         The nucleus is present in all eukaryotic cells, they may be absent in few cells, like mammalian RBCs.

·         The shape of the nucleus is mostly round; it may be oval or disc-shaped, disc shaped depending on the type of cell.

·         The nuclear envelope is a double membrane that separates the nucleus from the cytoplasm.

·         All traffic into and out of the nucleus passes through nuclear pores that bridge the double membranes.

·         The nuclear envelope consists of phospholipids that form a lipid bilayer.

·         The nuclear envelope is perforated with numerous pores called nuclear pores.

·         The envelope helps to maintain the shape of the nucleus and assists in regulating the flow of molecules into and out of the nucleus through nuclear pores.

·         The nuclear envelope is connected with the endoplasmic reticulum (ER) in such a way that the internal compartment of the nuclear envelope is continuous with the lumen of the ER.

·         Chromosomes consist of DNA, which contains hereditary information and instructions for cell growth, development, and reproduction.

·         When a cell is “resting,” i.e. not dividing, the chromosomes are organized into long entangled structures called chromatin and not into individual chromosomes.

·         Nucleoplasm is the gelatinous substance within the nuclear envelope.

·         The nucleolus is not surrounded by a membrane, it is a densely stained structure found in the nucleus.

Structure of Nucleus

Figure 6- A Nucleus

Functions of Nucleus

·         It controls the hereditary characteristics of an organism.

·         It main cellular metabolism through the synthesis of particular enzymes.

·         It is responsible for protein synthesis, cell division, growth, and differentiation.

·         Stores hereditary material in the form of deoxyribonucleic acid (DNA) strands. Also stores proteins and ribonucleic acid (RNA) in the nucleolus.

·         It is a site for the transcription process in which messenger RNA (mRNA) is produced for protein synthesis.

·         It helps in the exchange of DNA and RNA (hereditary materials) between the nucleus and the rest of the cell.

·         The nucleolus produces ribosomes and is known as a protein factory.

·         It also regulates the integrity of genes and gene expression.

 

1.4 Cytoplasmic inclusions

Cytoplasmic inclusions are diverse intracellular non-living substances that are not bound by membranes. Inclusions are stored nutrients, secretory products, and pigment granules.

Examples of inclusions are glycogen granules in the liver and muscle cells, lipid droplets in fat cells, pigment granules in certain cells of skin and hair, and crystals of various types.

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