Cell cycle

Last updated: November 01, 2022

Cell cycle

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Extracellular matrix
Cytoskeleton and intracellular motility
DNA structure
DNA damage and repair
DNA replication
Transcription of DNA
DNA alkylating medications
DNA mutations
Translation of mRNA
Oncogenes and tumor suppressor genes
Transitional cell carcinoma
Cell-cell junctions
Necrosis and apoptosis
Cell cycle
Cellular structure and function
Cell signaling pathways
Selective permeability of the cell membrane
Sickle cell disease: Clinical
Prader-Willi syndrome
Angelman syndrome
Gene regulation
Carbohydrates and sugars
Cartilage histology
Cartilage structure and growth
Marfan syndrome
Breast cancer: Clinical
Proteins
Amino acids and protein folding
Introduction to the central and peripheral nervous systems
Sympathetic nervous system
Nervous system anatomy and physiology
Parasympathetic nervous system
Introduction to the somatic and autonomic nervous systems
Tay-Sachs disease (NORD)
Skin cancer
Mitosis and meiosis
Anatomy of the heart
Development of the cardiovascular system
Body temperature regulation (thermoregulation)
Acid-base disturbances: Pathology review
The role of the kidney in acid-base balance
Antidiuretic hormone
Cell membrane
Resting membrane potential
Carbon dioxide transport in blood
Mesoderm
Ectoderm
Enzyme function
Gluconeogenesis
Glycolysis
Nuclear structure
Epigenetics
Glucagon
Compliance of blood vessels
Lymphatic system anatomy and physiology
Coronary circulation
Vessels and nerves of the forearm
Vessels and nerves of the hand
Blood components
Blood histology
Vessels and nerves of the thoracic wall
Transposition of the great vessels
Anatomy of the blood supply to the brain
Fascia, vessels and nerves of the upper limb
Zones of pulmonary blood flow
Regulation of pulmonary blood flow
Anatomy of the abdominal viscera: Blood supply of the foregut, midgut and hindgut
Mechanisms of antibiotic resistance
Loop of Henle
Body fluid compartments
Protein structure and synthesis
Hyperplasia and hypertrophy
Skin anatomy and physiology
Osteogenesis imperfecta
Central nervous system histology
Peripheral nervous system histology
Action potentials in pacemaker cells
Alzheimer disease
Down syndrome (Trisomy 21)
Anatomy of the cerebral cortex
Cerebellum
Anatomy of the cerebellum
Anatomy of the brainstem
Cardiac muscle histology
Artery and vein histology
Arteriole, venule and capillary histology
Bone histology
Skeletal muscle histology
Skin histology
Fibrous, cartilage, and synovial joints
Bones of the vertebral column
Vessels and nerves of the vertebral column
Development of the digestive system and body cavities
Pharmacokinetics: Drug metabolism
Pharmacodynamics: Drug-receptor interactions
Antiplatelet medications
Opioid agonists, mixed agonist-antagonists and partial agonists
Pharmacodynamics: Agonist, partial agonist and antagonist
Sympathomimetics: Direct agonists
Cholinomimetics: Direct agonists
Estrogens and antiestrogens
Pharmacokinetics: Drug elimination and clearance
Breast cancer: Pathology review
Drug administration and dosing regimens
Endoderm
Mendelian genetics and punnett squares
Independent assortment of genes and linkage
Inheritance patterns
Karyotyping
Turner syndrome
Autosomal trisomies: Pathology review
Pharmacodynamics: Desensitization and tolerance
Adrenergic antagonists: Beta blockers
Cholinomimetics: Indirect agonists (anticholinesterases)
Positive inotropic medications
Placebo effect and masking
Gastrointestinal system anatomy and physiology
Muscarinic antagonists
Anatomy of the leg
Anatomy of the arm
Respiratory system anatomy and physiology
Congenital heart defects: Clinical
Heart failure
Cardiovascular: Pulse (for nursing assistant training)
Cardiovascular: Blood pressure (for nursing assistant training)
Renin-angiotensin-aldosterone system
Cholinergic receptors
ACE inhibitors, ARBs and direct renin inhibitors
Metabolic alkalosis
Cardiovascular system anatomy and physiology
ECG intervals
Baroreceptors
Cardiac preload
Cardiac afterload
Cardiac cycle
Cardiac tamponade
Neuromuscular junction and motor unit
Anatomy of the cranial base
Anatomy of the pelvic girdle
Anatomy of the knee joint
Colon histology
Ascending and descending spinal tracts
Anatomy of the ascending spinal cord pathways
Cranial nerves rap
Cranial nerve pathways
Introduction to the cranial nerves
Anatomy of the abdominal viscera: Esophagus and stomach
Bell palsy
Anatomic and physiologic dead space
Stages of labor
Anatomy of the urinary organs of the pelvis
Muscles of the back
Ventilation-perfusion ratios and V/Q mismatch
Cerebral palsy
Brain tumors: Clinical
Adult brain tumors: Pathology review
Cataract
Glaucoma
Homonymous hemianopsia
Bitemporal hemianopsia
Crohn disease
Atrial fibrillation
Anatomy of the pleura
Routine prenatal care: Clinical
Cystic fibrosis: Clinical
Carpal tunnel syndrome
Iron deficiency anemia
Anticoagulants: Heparin
Anticoagulants: Warfarin
Thrombolytics
Glucocorticoids
Acetaminophen (Paracetamol)
Antibody classes
Clinical trials
Acid-base map and compensatory mechanisms
Abdominal hernias
Plasma anion gap
Alveolar gas equation
Anatomy of the basal ganglia
Tubular reabsorption of glucose
Basal ganglia: Direct and indirect pathway of movement
Inflammation
Sliding filament model of muscle contraction
Cardiac contractility
Cardiac excitation-contraction coupling
Slow twitch and fast twitch muscle fibers
Metabolic and respiratory acidosis: Clinical
Hyponatremia
Topoisomerase inhibitors
Oxygen-hemoglobin dissociation curve
Jaundice: Clinical
Metabolic and respiratory alkalosis: Clinical
Congenital TORCH infections: Pathology review

Transcript

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The cell cycle refers to the events that somatic cells - which includes all of the cells in our bodies except the reproductive cells - go through from the moment they’re formed until the moment they divide in two identical daughter cells.

This cycle varies in length depending on the type of cell - for rapidly dividing cells, like skin cells, it takes less than a day, whereas for other cells, like liver cells, the cell cycle can last years.

The cell cycle has two phases: interphase, and mitosis.

Interphase the longest part of the cell cycle, and it’s a state of preparation, during which the cell carries out its cell functions, grows and replicates its DNA to prepare for mitosis - or cellular division.

After a parent cell divides, each of the two daughter cells enter interphase again.

Now, interphase can further be broken down in three subphases: G1, S, and G2. G1 stands for “gap” or “growth” 1, and it’s the longest phase of the cell cycle.

During G1, the cell mostly grows and the organelles take care of regular cellular business - like the synthesizing proteins and producing energy.

Inside the cell nucleus, there’s our DNA, organized as chromosomes - and during G1, each chromosome is made up of a single, thin spaghetti of DNA, called a chromatid.

At the end of G1, there’s a cell cycle control point called the G1 checkpoint - where the cell checks to see if the DNA is not damaged, and it synthesized the right proteins in the correct amount.

If it turns out that there is any reason for the cell not to divide - such as DNA damage, things can go one of two ways: the cell can either enter a non-dividing state, called the G0 phase, where the DNA repair mechanisms try to fix the problem, or the cell can self-destruct in a process called apoptosis.

Now, if the cell does get the go-ahead at the G1 checkpoint, it enters the S phase. S stands for “synthesis”, because during this phase, DNA is replicated, so that each daughter cell receives identical copies of the genetic material.

So for each chromosome from G1, an identical copy is created.

This happens with the help of a number of proteins, both structural proteins and enzymes, as well as energy.

Now, just to be clear - this doesn’t mean that the number of chromosomes increases - human somatic cells have 46 chromosomes throughout the cell cycle.

However, the amount of DNA they have - and, in turn, their aspect - changes throughout the cell cycle.

So each chromosome enters the S phase with a single copy of the genetic information, called a chromatid.

During replication, each chromatid is copied and pasted, so the amount of DNA doubles up.

The two resulting chromatids are identical to each other and to the original genetic template, and they join together in the center in a region called the centromere - - but they still make up a single chromosome.

So while the amount of genetic information has doubled, there are still 46 chromosomes that contain that genetic information.

The cell can now enter the G2 phase. G2 stands for “gap” or “growth” 2.

Even after synthesizing copies of the DNA, the cell still has to duplicate organelles so that there are enough for both daughter cells.

In fact, by the end of G2, the cell looks like a big balloon of cytoplasm and organelles, just waiting to split.

Key Takeaways

The cell cycle is a process that somatic cells go through that involves the duplication of DNA, growth, and division of the cell. The cell cycle can be divided into four phases: G1, S, G2, and M. G1 is the growth phase, where the cell performs all of its functions, and S is the synthesis phase, where DNA replication occurs. G2 is the growth phase, where the cell grows in size and prepares for Mitotic division, and M is the mitotic cell division phase, dividing the cell into two identical daughter cells.