Posted in

CELLULAR AGING – page # 21, Lecture # 6, Chapter # 1

CELLULAR AGING - page # 21, Lecture # 6, Chapter # 1
  • During early life in multicellular animals, natural selection strongly favors genetic changes that improve reproduction.
  • These beneficial genetic changes are passed to offspring and help maintain the population.
  • In contrast, DNA repair mechanisms do not have to be perfect, as long as they are good enough to allow survival through the reproductive years.
  • Because DNA repair is not perfect, mutations gradually accumulate with time.
  • Some of these mutations are harmful and contribute to cellular aging.
  • Aging is caused by a progressive decline in normal physiologic, cellular, and molecular mechanisms that maintain homeostasis after the reproductive years.
  • Aging has important effects on health because increasing age is one of the strongest independent risk factors for many chronic diseases.
  • These diseases include:
    • Cancer
    • Alzheimer disease
    • Ischemic heart disease
  • One important discovery about cellular aging is that aging is not simply because cells gradually “run out of steam” with time.
  • Instead, aging results from changes in genes and signaling pathways that have been conserved through evolution from yeast to mammals.
  • Experimental studies have shown that aging can be delayed.
  • For example, in animals, some features of aging can be slowed by specific interventions such as calorie restriction and certain therapeutic drugs.
  • Cellular aging results from a decrease in the ability of cells to replicate and a decrease in their functional activity.
  • Several mechanisms contribute to cellular aging (Fig. 1.27).

DNA damage

  • Nuclear DNA and mitochondrial DNA frequently develop mutations.
  • These mutations can include:
    • Base substitutions
    • Copy number variations
    • Deletions
    • Insertions
  • Many mutations are produced by the spontaneous deamination of cytosine residues.
  • This type of DNA damage occurs repeatedly over time.
  • DNA damage becomes faster because of endogenous stresses, such as reactive oxygen species (ROS).
  • It can also be increased by exogenous insults, such as UV radiation and chemotherapeutic agents.
  • Most DNA changes are detected by the cell and corrected by DNA repair enzymes.
  • However, some DNA changes are not repaired.
  • These unrepaired changes accumulate as cells age.
  • Several inherited syndromes that cause premature aging result from mutations in genes that produce DNA repair proteins needed to maintain genomic stability.
  • Damage to nuclear and mitochondrial DNA may contribute to aging through several harmful effects:
    • Telomere dysfunction
    • Epigenetic alterations that change the expression of many genes
    • Production of defective proteins that disturb protein homeostasis
    • Mitochondrial dysfunction, which may trigger cell death
    • Cellular senescence and loss of stem cells
    • Changes in signaling pathways that regulate aging

Decreased cellular replication

  • Normal cells, except stem cells, have a limited ability to replicate.
  • After a fixed number of divisions, cells stop dividing and enter a permanently nondividing state called replicative senescence.
  • Aging is associated with a progressive increase in replicative senescence.
  • Cells from children can undergo more rounds of replication than cells from older people.
  • In contrast, cells from patients with Werner syndrome, a rare disease that resembles aging, have a much lower ability to replicate.
  • Replicative senescence occurs as cells age because their telomeres progressively become shorter.
  • Eventually, telomere shortening causes cell cycle arrest.
  • Telomeres are short, repeated DNA sequences located at the ends of chromosomes.
  • They are important for:
    • Ensuring complete replication of chromosome ends
    • Protecting chromosome ends from fusion and degradation
  • When somatic cells replicate, a small part of the telomere is not duplicated.
  • Therefore, telomeres become progressively shorter with each replication.
  • When telomeres become severely eroded, the chromosome ends are no longer properly protected.
  • The cell recognizes these exposed chromosome ends as broken DNA.
  • This signals the cell to stop the cell cycle.
  • Telomere length is maintained by an enzyme called telomerase.
  • Telomerase adds nucleotides to the ends of chromosomes.
  • Telomerase is a specialized RNA-protein complex.
  • It uses its own RNA as a template to add nucleotides to chromosome ends.
  • Telomerase is active in germ cells.
  • It is present at low levels in stem cells.
  • It is absent in most somatic cells (Fig. 1.28).
  • Therefore, as somatic cells age, their telomeres become shorter.
  • The cells eventually leave the cell cycle.
  • As a result, they cannot produce enough new cells to replace damaged cells.
  • In contrast, immortalized cancer cells usually reactivate telomerase.
  • This stabilizes their telomere length.
  • As a result, cancer cells can continue proliferating indefinitely (Chapter 6).
  • However, the exact relationship between telomerase activity, telomere length, and aging is still not completely established.
  • Inherited deficiencies of telomerase activity have been associated with several diseases.
  • These include:
    • Aplastic anemia, thought to result from failure of hematopoietic stem cells
    • Pulmonary fibrosis
    • Liver fibrosis
    • Premature graying of hair
    • Characteristic skin pigment and nail abnormalities
  • These disorders are sometimes called telomeropathies.

Altered protein homeostasis

  • With time, cells become less able to maintain normal protein homeostasis.
  • This happens because of:
    • Increased protein turnover
    • Decreased protein synthesis
    • Defective activity of chaperones
    • Defective activity of proteasomes
  • Chaperones help proteins fold normally.
  • Proteasomes break down misfolded proteins.
  • Abnormal protein production can have many harmful effects on:
    • Cell survival
    • Cell replication
    • Cell functions
  • At the same time, misfolded proteins accumulate inside cells.
  • This accumulation may trigger apoptosis.

Biochemical signaling pathways

  • Biochemical signaling pathways may also help regulate the aging process.
  • Certain environmental stresses, such as calorie restriction, can change signaling pathways that influence aging.
  • The biochemical changes produced by calorie restriction may counteract aging and prolong lifespan.
  • In experimental models, some agents that reduce aging include inhibitors of:
    • Insulin-like growth factor (IGF-1)
    • mTOR
  • Both IGF-1 and mTOR influence signaling pathways that regulate cellular metabolism.
  • Partially inhibiting these pathways may shift cells away from focusing mainly on growth and proliferation.
  • Instead, cells may focus more on repairing damage.
  • These strategies have increased the lifespan of model organisms.
  • However, their relevance to humans remains uncertain.

Persistent inflammation

  • As people age, damaged cells, lipids, and DNA accumulate.
  • These accumulated materials may activate the inflammasome pathway (Chapter 5).
  • This can produce low-level inflammation.
  • Persistent inflammation can contribute to chronic diseases such as:
    • Atherosclerosis
    • Type 2 diabetes
  • Cytokines produced during inflammation can themselves cause cellular changes that worsen aging.
  • Chronic metabolic disorders may further accelerate aging.
  • Clinical observations and epidemiologic studies show that physical activity and calorie restriction can slow aging.
  • In contrast, many types of stress can accelerate aging.
  • The exact mechanisms responsible for these effects are not yet completely understood.
  • Therefore, we all remain vulnerable to the effects of aging.
  • The different cellular changes and adaptations described in this chapter cover a wide spectrum.
  • They range from:
    • Reversible and irreversible acute cell injury
    • Adaptations in cell size, growth, and function
    • The largely unavoidable effects of aging
  • These cellular changes are referred to throughout the book because organ injury and ultimately all clinical diseases arise from abnormalities in cell structure and function.

KEY CONCEPT

Cellular aging = progressive decrease in cell replication and function caused by accumulated cellular damage and changes in mechanisms that maintain cellular homeostasis.

Conceptual examples:

  • DNA damage → unrepaired mutations accumulate → cellular aging
  • Repeated cell division → telomeres shorten → cell cycle arrest → replicative senescence
  • Low telomerase in somatic cells → telomeres progressively shorten → reduced ability to replace damaged cells
  • Cancer cells → telomerase reactivated → telomeres stabilized → continued proliferation
  • Aging → defective protein homeostasis → misfolded proteins accumulate → possible apoptosis
  • Calorie restriction → altered signaling pathways → may slow aging
  • Aging → damaged cells/lipids/DNA → inflammasome activation → persistent inflammation → chronic disease
  • Physical activity → aging may be slowed; excessive stress → aging may be accelerated

FIG. 1.28 — The Role of Telomeres and Telomerase in Replicative Senescence

🧠 THE BIG IDEA

This figure explains why many normal cells cannot divide forever and how telomeres, telomerase, aging, and cancer are connected.

The easiest central idea is:

Every time most normal cells divide, their telomeres become shorter. When telomeres become critically short, the cell stops dividing → senescence → tissue dysfunction and aging.

But:

Cancer cells can reactivate telomerase → maintain telomeres → continue dividing.

1. 🧬 What are telomeres?

Look at the ends of the chromosomes in the upper part of the figure.

At the ends are special DNA sequences called:

Telomeres

The figure shows:

TTAGGG repeats

These are repeated DNA sequences located at the ends of chromosomes.

Think of telomeres as the protective caps on shoelaces.

Without the plastic cap on a shoelace, the shoelace starts to unravel.

Similarly:

Telomeres protect chromosome ends from being damaged or confused with broken DNA.

2. 🧬 What happens when a cell divides repeatedly?

Look at the arrow:

Increasing age → repeated cell divisions

Every time a normal somatic cell divides:

Telomeres become progressively shorter.

This is called:

Telomere attrition

Attrition = gradual wearing away/shortening.

So:

Long telomeres
      ↓
Cell division
      ↓
Telomeres become shorter
      ↓
Cell division
      ↓
Even shorter telomeres
      ↓
Repeated divisions
      ↓
Critical telomere shortening

3. ✂️ Why do telomeres become shorter?

During DNA replication, the very ends of chromosomes cannot be copied completely by the normal DNA replication machinery.

Therefore, with repeated cell divisions:

A small amount of telomeric DNA is lost each time.

So the telomeres act somewhat like a countdown mechanism for many somatic cells.

4. 👴 What happens when telomeres become too short?

Look at the right side of the figure.

Telomere attrition

DNA damage response

Defective cell proliferation

The cell recognizes critically short/damaged telomeres as a serious problem.

Therefore:

The cell stops proliferating normally.

This leads to two major consequences shown in the figure.

5. 🛑 SENESCENCE OF MATURE CELLS

The first pathway is:

Senescence of mature cells

Senescence means:

The cell remains alive but permanently stops dividing.

This is different from cell death.

Senescent cell:

  • Alive ✅
  • Metabolically active ✅
  • Normal proliferation ❌

Think:

The cell is alive, but it has permanently retired from cell division.

6. 🌱 DEPLETION OF STEM/PROGENITOR CELLS

The second pathway is:

Depletion of stem/progenitor cells

Stem and progenitor cells are important because they:

Replace and replenish cells in tissues.

If their ability to divide becomes limited:

↓ Stem/progenitor cells

↓ Tissue repair and regeneration

Tissue dysfunction

7. 👴 HOW DOES THIS CAUSE AGING?

The figure shows:

Senescence of mature cells

+

Depletion of stem/progenitor cells

Tissue dysfunction (aging)

This is the main connection.

In simple terms:

Repeated cell divisions
        ↓
Telomeres shorten
        ↓
Critical telomere attrition
        ↓
Cells stop dividing
        ↓
Less cell replacement + repair
        ↓
Tissue dysfunction
        ↓
AGING

8. 🧬 NOW UNDERSTAND PANEL B — THE GRAPH

Panel B is very important.

Y-axis:

Telomere length

Going upward means:

Longer telomeres

Going downward means:

Shorter telomeres

X-axis:

Increasing age / repeated cell divisions

Moving right means:

More cell divisions and increasing age

9. ⚫ SOMATIC CELLS — BLACK LINE

Look at the black line labeled:

Somatic cells

The line goes downward.

That means:

As somatic cells undergo repeated divisions, their telomeres become shorter.

So:

More divisions → shorter telomeres

10. 🟢 STEM CELLS — GREEN LINE

Now look at the green line.

It decreases only slightly.

Why?

Because stem cells have mechanisms that help maintain their telomeres.

The important enzyme is:

Telomerase

Therefore:

Stem cells can maintain telomeres much better than ordinary somatic cells.

This allows them to undergo many more divisions.

11. 🟣 SENESCENCE — PURPLE DOTTED LINE

Eventually, somatic-cell telomeres become critically short.

At this point:

Senescence

occurs.

The purple dotted line continues downward from the point where the cell enters senescence.

This represents:

Progressive telomere shortening associated with cellular senescence.

12. 🔴 CANCER CELLS — RED LINE

Now look at the red line.

Cancer cells are different.

The figure shows:

Cancer cells

with telomere maintenance.

Cancer cells frequently:

Reactivate telomerase

Telomeres are maintained

Cancer cells can continue dividing.

13. ⭐ WHAT IS TELOMERASE?

Telomerase is an enzyme that:

Maintains and extends telomeres.

Think of telomeres as the ends of a candle that become shorter every time it is used.

Normal somatic cell:

🔥 Use → shorter
🔥 Use → shorter
🔥 Use → shorter
→ eventually stops dividing

Telomerase-active cell:

🔥 Use → telomere maintained
🔥 Use → telomere maintained
🔥 Use → telomere maintained

Therefore:

Telomerase gives cells the ability to maintain telomere length and continue proliferating.

14. 🚨 WHY IS TELOMERASE IMPORTANT IN CANCER?

This is one of the most important concepts in the figure.

Normally:

Telomeres shorten

Cell stops dividing

Limits the number of cell divisions.

But cancer cells can escape this limitation.

Cancer:

Telomerase reactivation

Telomeres maintained

Continued cell proliferation

Cancer

So:

Telomerase helps cancer cells overcome the normal replicative limit.

15. 🧠 UNDERSTAND THE TOP PART OF PANEL A

Starting point:

Long telomeres

The chromosome ends have many:

TTAGGG repeats

Then:

Increasing age + repeated cell divisions

Telomere attrition

The yellow telomere regions become progressively shorter.

16. 🚨 CRITICALLY SHORT TELOMERES

When telomeres become critically short:

DNA damage response is activated.

The cell essentially says:

“My chromosome ends are becoming unsafe.”

Therefore:

DNA damage response

Defective cell proliferation

Either:

Senescence of mature cells

or

Depletion of stem/progenitor cells

Tissue dysfunction → aging

17. 🔥 BUT CANCER TAKES A DIFFERENT PATH

The figure shows another arrow:

Telomerase reactivation → Cancer

This means:

Cancer cells can turn telomerase back on.

Telomeres are maintained.

The cell avoids the normal telomere-shortening limit.

It can continue proliferating.

Therefore:

The same mechanism that helps stem cells maintain their ability to divide can be misused by cancer cells to support essentially unlimited proliferation.

🧩 NOW UNDERSTAND THE ENTIRE FIGURE AS ONE STORY

              NORMAL CELL
                   ↓
          Repeated cell division
                   ↓
            Telomeres shorten
                   ↓
          Telomere attrition
                   ↓
           DNA damage response
                   ↓
       Defective cell proliferation
              ↙         ↘
             ↓           ↓
      Senescence      Stem/progenitor
     of mature cells      depletion
             ↘           ↙
                ↓
         Tissue dysfunction
                ↓
              AGING

But cancer can escape:

Cancer cell
    ↓
Telomerase reactivation
    ↓
Telomeres maintained
    ↓
Continued proliferation
    ↓
CANCER

⭐ THE MOST IMPORTANT COMPARISON

Cell typeTelomere behaviorResult
Somatic cellsTelomeres progressively shortenLimited replication → senescence
Stem cellsTelomeres maintained betterContinued ability to replicate
Cancer cellsFrequently activate telomeraseTelomeres maintained → continued proliferation

🧠 SUPER-EASY ANALOGY

Imagine every cell division uses one piece of a protective rope at the end of each chromosome.

🧍 Somatic cell

Has a limited supply of rope.

Division → rope gets shorter

Eventually:

Rope too short → cell stops dividing

= Senescence

🌱 Stem cell

Has a system that can replace the rope.

= Telomere maintenance

Therefore:

Stem cell can keep dividing for much longer.

🦠 Cancer cell

Turns that rope-repair system back on:

Telomerase reactivation

Keeps the telomeres maintained.

Allows continued proliferation.

🎯 FINAL EXAM CONCEPT

Repeated division of most somatic cells causes progressive telomere shortening. Critically short telomeres activate a DNA-damage response that causes cellular senescence and contributes to depletion of stem/progenitor cells, leading to tissue dysfunction and aging. Stem cells maintain their telomeres and can therefore replicate extensively. Cancer cells frequently reactivate telomerase, allowing telomere maintenance and continued proliferation.

🔑 ONE-LINE MEMORY

Somatic cells:

Division → telomere shortening → senescence → aging

Stem cells:

Telomere maintenance → continued replication

Cancer cells:

Telomerase reactivation → telomere maintenance → continued proliferation

Superfast RAPID REVIEW – Chapter # 1

Patterns of Cell Injury and Cell Death

  • Causes of cell injury include:
    • Ischemia
    • Toxins
    • Infections
    • Immunologic reactions
    • Genetic abnormalities
    • Nutritional imbalances
    • Physical agents, such as trauma and burns
    • Aging
  • Reversible cell injury is characterized by:
    • Cell swelling
    • Fatty change
    • Plasma membrane blebbing
    • Loss of microvilli
    • Mitochondrial swelling
    • Dilation of the ER
    • Eosinophilia due to decreased cytoplasmic RNA
    • Myelin figures
  • Necrosis is characterized by:
    • Eosinophilia
    • Nuclear shrinkage
    • Nuclear fragmentation
    • Nuclear dissolution
    • Breakdown of the plasma membrane and organellar membranes
    • Leakage and enzymatic digestion of cellular contents
    • Inflammation
  • The morphologic types of tissue necrosis are:
    • Coagulative
    • Liquefactive
    • Gangrenous
    • Caseous
    • Fat
    • Fibrinoid
  • Apoptosis is a regulated form of cell death that removes unnecessary or irreparably damaged cells.
  • It occurs without an injurious reaction from the host.
  • Apoptosis is characterized by:
    • Enzymatic breakdown of proteins and DNA
    • Activation by caspases
    • Recognition and removal of dead cells by phagocytes
  • There are two major pathways of apoptosis.
  • The mitochondrial (intrinsic) pathway is triggered by:
    • Loss of survival signals
    • DNA damage
    • Accumulation of misfolded proteins due to ER stress
  • It involves leakage of proapoptotic proteins from mitochondria into the cytoplasm.
  • These proteins then trigger caspase activation.
  • The pathway is inhibited by antiapoptotic BCL family proteins.
  • These antiapoptotic proteins are induced by survival signals, including growth factors.
  • The death receptor (extrinsic) pathway helps eliminate:
    • Self-reactive lymphocytes
    • Cells targeted by cytotoxic T lymphocytes
  • It begins when death receptors, which belong to the TNF receptor family, bind to ligands on adjacent cells.
  • Autophagy is triggered by nutrient deprivation.
  • It involves the degradation and recycling of cellular contents to provide energy during stress.
  • If the stress is not relieved, autophagy can trigger apoptosis.
  • Other unusual pathways of cell death include:
    • Necroptosis — has features of both necrosis and apoptosis and is controlled by specific signaling pathways.
    • Pyroptosis — cell death associated with the release of proinflammatory cytokines.

Mechanisms of Cell Injury

  • Different initiating events can cause cell injury and death through different mechanisms.
  • Mitochondrial damage and increased cell membrane permeability are often late events in cell injury and necrosis caused by different conditions.
  • Oxidative stress means accumulation of reactive oxygen species (ROS).
  • ROS can damage:
    • Lipids
    • Proteins
    • DNA
  • Oxidative stress is associated with many different causes of cell injury.
  • ER stress occurs when proteins become misfolded.
  • Protein misfolding can reduce essential proteins.
  • If misfolded proteins accumulate inside cells, they can trigger apoptosis.
  • DNA damage, such as damage caused by radiation, can also trigger apoptosis if the damage cannot be repaired.
  • Hypoxia and ischemia cause ATP depletion.
  • ATP depletion causes failure of many energy-dependent cellular functions.
  • This initially produces reversible cell injury.
  • If the condition is not corrected, it progresses to necrosis.
  • In ischemia-reperfusion injury, restoring blood flow to ischemic tissue can actually increase the damage.
  • This occurs because reperfusion increases:
    • ROS production
    • Inflammation

Cellular Adaptations to Stress

  • Hypertrophy means increased cell size and organ size.
  • It commonly occurs in response to increased workload.
  • It is induced by growth factors produced in response to mechanical stress or other stimuli.
  • It occurs in tissues whose cells are unable to divide.
  • Hyperplasia means an increased number of cells.
  • It occurs in response to hormones and other growth factors.
  • It occurs in tissues whose cells can divide or contain many tissue stem cells.
  • Atrophy means decreased cell size and organ size.
  • It can result from decreased nutrient supply or disuse.
  • It is associated with:
    • Decreased synthesis of cellular building blocks
    • Increased breakdown of cellular organelles
  • Metaplasia means a change in the phenotype of differentiated cells.
  • It often occurs in response to chronic irritation.
  • The new cell type is better able to withstand the stress.
  • It is usually caused by an altered differentiation pathway of tissue stem cells.
  • It may cause reduced cellular functions or increase the tendency toward malignant transformation.

Abnormal Intracellular Depositions and Calcifications

  • Abnormal substances can accumulate in cells and tissues because of:
    • Excessive intake
    • Defective transport
    • Defective catabolism
  • Lipids can accumulate abnormally.
  • Fatty change means accumulation of free triglycerides inside cells.
  • It results from excessive intake or defective transport, often because of defects in the synthesis of transport proteins.
  • Fatty change is a manifestation of reversible cell injury.
  • Cholesterol deposition results from:
    • Defective catabolism
    • Excessive intake
  • It occurs in macrophages and smooth muscle cells of vessel walls in atherosclerosis.
  • Proteins can accumulate as:
    • Reabsorbed proteins in kidney tubules
    • Immunoglobulins in plasma cells
  • Glycogen can accumulate in macrophages of patients with defects in lysosomal enzymes that break down glycogen.
  • These conditions are called glycogen storage diseases.
  • Pigments are typically indigestible substances.
  • Examples include:
    • Carbon
    • Lipofuscin, a breakdown product of lipid peroxidation
    • Hemosiderin, usually associated with iron overload
  • Pathologic calcifications are abnormal calcium deposits.
  • Dystrophic calcification means deposition of calcium at sites of cell injury and necrosis.
  • Metastatic calcification means deposition of calcium in normal tissues.
  • It is caused by hypercalcemia.
  • Hypercalcemia is usually a consequence of excess parathyroid hormone.

Cellular Aging

  • Cellular aging results from a combination of multiple progressive cellular changes.
  • These changes include:
    • Accumulation of DNA damage and mutations
    • Replicative senescence — reduced ability of cells to divide because of progressive shortening of telomeres at chromosome ends
    • Defective protein homeostasis — loss of normal proteins and accumulation of misfolded proteins
  • Cellular aging is accelerated by chronic diseases, especially diseases associated with prolonged inflammation.
  • Stress can also accelerate aging.
  • Calorie restriction and exercise can slow down aging.

KEY CONCEPT

Rapid Review = Cell response can be understood as:

  • Injury → reversible injury → if severe/persistent → cell death
  • Cell death → necrosis or apoptosis
  • Stress → adaptation → hypertrophy, hyperplasia, atrophy, or metaplasia
  • Abnormal accumulation → lipids, proteins, glycogen, pigments, or calcium
  • Aging → DNA damage + telomere shortening + protein problems → reduced cell replication and function

Made by self Learning Dr sheen

Leave a Reply

Your email address will not be published. Required fields are marked *