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THIS SHIT IS SO FUCKING LONG FUCK THIS DAMN LESSON ISTG
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Meristematic Tissues
Plants can grow continuously due to the activity of meristems, unspecialized tissues composed of dividing cells.
Plant Tissue
A flowering plant can grow throughout its entire life because it possesses meristematic (embryonic) tissue.
Apical Meristems
Are located at the tips of roots and shoots, elongate shoots and roots, primary growth.
Protoderm
Produces dermal tissue, forms the outer protective covering of a plant.
Ground Meristem
Produces ground tissue, fills the interior of a plant.
Procambium
Produces vascular tissue, transports water and nutrients and provides support.
Lateral Meristems
Add thickness to woody plants, a process called secondary growth.
Vascular Cambium
Adds a layer of vascular tissue called secondary xylem (wood) and secondary phloem.
Cork Cambium
Replaces the epidermis with periderm, which is thicker and tougher.
Intercalary Meristem
Are located at the internodes or the base of the leaves. It helps in increasing the length of the internode. This type of meristem occurs only in monocots, particularly grass. Through this growth, these plants are able to rapidly regrow leaves and elongate stems as an adaptive mechanism against herbivory.
Epidermal/Dermal Tissues
The entire body of both nonwoody (herbaceous) and young woody plants are made up of closely packed cells called epidermis.
Cuticle
The walls of epidermal cells exposed to air are covered with a waxy cuticle to minimize water loss, and to protect against bacteria and other organisms that might cause disease in plants.
Root Hairs
Long, slender projections certain epidermal cells develop in roots.
Trichomes
Epidermal cells produce hairs on the surfaces of stems, leaves, and reproductive organs to protect the plant from too much sun and to conserve moisture.
Guard Cells
Specialized epidermal cells in leaves facilitating gas exchange in shoots.
Stomata
A pair of guard cells surrounding microscopic pores which regulate gas exchange and water loss in leaves.
Periderm
Epidermis of young stems that replaces woody plants as it gets older.
Cork Cells
The major component of the periderm which are boxlike.
Cork Cambium
Over productions of cork cells in certain areas of the stem surface cause ridges and cracks to spear.
Ground Tissue
Forms the bulk of a flowering plant and contains parenchyma, collenchyma and sclerenchyma cells.
Parenchyma Cells
Most abundant type of plant tissue found in all organs but the least specialized. Their functions depend on the type of pigment they contain.
Collenchyma Cells
Like parenchyma cells except that they have thicker primary walls. The thickness is uneven and usually found in the corners of the cell.
Sclerenchyma Cells
Have thick secondary walls filled with a highly resistant organic substance called lignin that makes the walls tough and hard. Mostly non living and supports the mature regions.
Fibers
Long and slender structures and may be grouped in bundles. They are mostly found in vascular tissue, although they may be occasionally found in ground tissue.
Sclereids
(Stone cells) shorter than fibers and more varied in shape, are found in seed coats and nutshells. Responsible for the gritty structure of pears, as well as the hardness of nuts and peach pits.
Vascular Tissues
Has two types; Xylem and Phloem.
Xylem
Transports water and minerals from the roots to the leaves.
Tracheids
Form a less obvious means of transport (elongated with tapered ends). Water can move across the end walls and side walls because there are pits, or depressions, where the secondary walls do not form.
Vessel Elements
Larger, may have perforation plates in their end walls, and are arranged to form a continuous vessel for water and mineral transport. Both types of conducting cells are hollow and nonliving.
Phloem
Transports sucrose and other organic compounds, usually from the leaves to the roots.
Sieve Tube Members
Specialized elongated parenchyma cells which are arranged end to end forming a continuous column.
Companion Cells
Has a nucleus and helps the sieve tube members carry out their function.
Fibers
Lend supports to the phloem.
Parenchyma
Part of the phloem.
Epithelial Cells
Consists of tightly packed cells that form a continuous layer. Covers surfaces and lines body cavities and therefore provides protective function.
Tight Junction
Form impermeable barrier between cells.
Adhesion Junctions
Add strength and allow epithelial cells to stretch and bend.
Gap Junctions
Permit the passage of molecules between two adjacent cells.
Basement Membrane
Thin layer of various types of proteins that anchor the epithelium to the extracellular matrix which is often a type of connective tissue.
Types of Epithelial Tissue
Consists of Simple Epithelium, Stratified Epithelium, and Glandular Epithelium.
Simple Epithelium
Single layer of cells and is classified according to the shape of cells.
Squamous Epithelium
Composed of flattened cells and found in lining blood vessels and the air sacs of lungs.
Cuboidal Epithelium
Contains cube-shaped cells and found lining the kidney tubules and various glands.
Columnar Epithelium
Resembles rectangular pillars found in lining the digestive tract. Ciliated columnar epithelium is found lining the oviducts where it propels the egg towards the uterus.
Pseudo Stratified Epithelium
Appears to be layered, but true layers do not appear because each cell is attached to the basement membrane.
Stratified Epithelium
Made up of more than one layer of cells. Only the bottom layer touches the basement membrane.
Glandular Epithelium
Kind of epithelium that secretes a product. A gland can be a single – cell gland is the mucus – secreting goblet cells found within the columnar epithelium lining the digestive tract.
Exocrine Glands
Secretes their products into ducts.
Endocrine Glands
Have no ducts and secrete their products directly into the blood stream.
Connective Tissue
Most abundant and widely distributed tissue in complex animals.
Ground Substance
Found in between the cells, is a noncellular material that varies in consistency from solid to semifluid to fluid.
Protein Fibers
Consists of White Collagen Fibers, Reticular Fibers, and Yellow Elastic Fibers.
White Collagen Fibers
Contain collagen – protein that gives them flexibility and strength.
Reticular Fibers
Contain very thin collagen fibers which are highly branched and form delicate supporting networks.
Yellow Elastic Fibers
Contains elastin, protein that is not long as strong as collagen but is more elastic.
Connective Tissue Matrix
The ground substance, together with the fibers.
Three Categories of Connective Tissues
Fibrous, Supportive, and Fluid.
Loose Fibrous Connective Tissue
Has fibroblasts and collagen fibers widely scattered in its matrix.
Dense Fibrous Connective Tissue
Contains many collagen fibers that are tightly packed together.
Supportive Connective Tissue
This type of tissue includes cartilage and bones which are the two main supportive connective tissues that provide structure, shape and protection, and leverage for movement.
Cartilage
Generally more flexible than bone because its matrix lacks calcium deposits. Contains cells that lie in small chambers called lacunae which are separated by a solid but flexible matrix. It heals very slowly because it lacks a direct blood supply
Hyaline Cartilage
Most common cartilage containing only very fine collagen fibers. This type of cartilage with a white translucent matrix is found in the nose, at the ends of the long bones and the ribs, and walls of the respiratory passages.
Elastic Cartilage
Has more fibers making it more flexible than hyaline cartilage. It is found in the framework of the outer ear.
Fibro Cartilage
Has a matrix containing strong collagen fibers.
Bone
Has an extremely hard matrix made up mostly of calcium salts deposited among protein fibers especially collagen fibers.
Compact Bone
Consists of cylindrical structural units called osteons (Harvesian system).
Lacunae
Spaces bone cells (osteocytes) are found in between the rings of matrix.
Spongy Bone
Found at the ends of a long bone, contains numerous bony bars and plates separated by irregular spaces.
Fluid Connective Tissue
Blood, consisting of formed elements and plasma, is a fluid connective tissue located in blood vessels. Formed elements of blood consist of many kinds of blood cells and the plates.
Red Blood Cells
Small biconcave disk-shaped cells without nuclei. They contain red pigment called hemoglobin which is made up of protein globin and a complex iron – containing heme.
White Blood Cells
Much larger than red blood cells and contain nuclei which when stained typically looks blue or purple.
Platelets
Not complete cells but fragments of large cells present only in bone marrow. They stop bleeding by forming a plug that seals the blood vessels.
Lymphocytes
Specialized white blood cells, which together with other cells, remove any foreign materials from the body by phagocytosis.
Muscular Tissue
It is composed of cell muscle fibers that contain actin and myosin filaments. The interaction between these two protein filaments account for the movement of body parts. As muscles contact, body heat is generated.
Skeletal Muscle
Made up of long and cylindrical muscle fibers that sometimes run the entire length of the muscle. It is a voluntary muscle because it is under the control of the will.
Smooth Muscle
Made up of spindle – shaped mononucleated cells which are not under voluntary control.
Cardiac Muscle
Found only in the heart, has both features of skeletal and smooth muscles. It has striations, but its contractions are involuntary like the smooth muscles. It has a single and centrally located nucleus.
Nervous Tissue
It is made up of specialized signaling cells called neurons and supporting cells called neuroglia. About a trillion neurons are present in an average human body. The nervous system conducts signal termed nerve impulses throughout the body.
Neurons
Contains three parts, cell body, dendrites, and axon.
Cell Body
Processes such as the dendrites and the axons.
Dendrites
Conducts signals toward the cell's body, while axons are covered by a fatty substance called myelin.
Axon
Conducts signals away from the cell body.
Neuroglia
More than half of the brain volume is made up of these cells which function to support, nourish and protect neurons.
Microglia
Gives support, as well as protection to the neurons by engulfing bacterial and cellular debris.
Astrocytes
Provide nutrients to neurons and produce a hormone known as glial cell – derived growth factor which is being studied as a possible treatment for Parkinson’s diseases caused by neuron degeneration.
Oligodendrocytes
Form myelin in the brain.
The nervous system carries out three major functions:
Sensory input
Integration of data
Motor output
Cell Modification
A process that occurs after cell division where the newly formed cells are structurally modified so that they can perform their function effectively.
Succulent Leaves
Of century plant (Agave), aloes, sedums, and desert plants, which are thick and fleshy, store water to enable them to survive long periods of drought and semidesert conditions.
Tendrils
(Modified leaf petioles, veins, or stipules), growing in climbing plants like garden peas, bitter gourd and cucumber, can coil around support for anchorage.
Brightly Coloured
To help attract pollinators.
Tubular or Vase
Shaped leaves of Pitcher plants secrete a fluid for digesting insects falling into their cavities.
Lateral Roots
Of mangrove trees growing in swamps produce pneumatophores (upright conical growths) that aerate the submerge roots.
Adventitious Roots
(Called brace or prop roots) that develop from the stem or even from the leaves, such as in pandan or corn, grow into the ground to help underground roots support the stem.
Microvilli
Finger-like projections extending from the free surface of epithelial cells that increase the surface area across which substances are absorbed.
Fimbriae
Finger-like extensions from the oviduct near the ovary that help to propel the released ova towards the fallopian tube.
Alveoli
Microscopic, grapelike air sacs found at the tip of the bronchioles in the lungs that provide tremendous surface area for gas exchange during respiration.
Goblet Cell
A glandular, modified simple columnar epithelial cell that secretes gel-forming mucins, the major components of mucus.
Animal Red Blood Cell
A biconcave disk-shaped cell that provides more surface area for gas exchange; absence of its nucleus in mature red blood cells give more space for the hemoglobin.
Animal White Blood Cell
Also called leukocytes, contain enzymes and other proteins needed to protect the body against both infectious diseases and foreign invaders.