Microbiome (ALL POST MIDTERM CONTENT)

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Last updated 10:58 PM on 8/8/26
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419 Terms

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Mucosal Surfaces

- Soft tissue

- Lips

- cheek

- palate

- tounge

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Hard/non shedding surfaces

- teeth

- bones

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Epithial cells

Slough off

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Supra-gingival plaque

Above the gum surface

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Sub gingival plaque

- below the gum surface

- need a probe to get to it

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Approximal plaque

-between the teeth

- hard to reach areas

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Buffering salts

-important to mainting saliva ph

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2 oral fluids

- Saliva

- GCF

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Main parts of saliva

- Lysozyme

- Albumin

- buffering salts

- rich in nutrients

- lots of proteins and antibodies

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GCF

- gingival cervical fluid

- from gingival surfaces

- derived from human serum

- fluid from gingiva

- goes through the gums to feed bacteria below the gums

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Resting Saliva

- test tube

- whatever you have in your saliva in your mouth

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Stimulated saliva

- saliva after smelling and tasting food

- chewing gum

- larger volume and more liquid in it

- the less salts and proteins, the more liquid there is

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Saliva Specific Buffering Salts

- sodium

- potassium

- calcium

- Magnesium

- phosphate

- bicarbonate

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Factors affecting microbial growth in oral cavity

- Temperature

- Redox potential

- pH

- Nutrients

- Host defenses

- host genetics

- Antimicrobial agents

- Inhibitors

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Factors affecting microbial growth in oral cavity (tempurature)

35-36 degrees

- can increase to 39 degrees celcius in periodontal pockets with inflammation

- change can regulate gene expression in bacteria for gene encoding ezymes and fimbriae

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Gene encoding enzymes

- Proteases

- SOD

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what can make bacteria in oral cavity more virulent

Changes in host tempurature

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Factors affecting microbial growth in oral cavity (Redox potential/anaerobiosis)

- oxidative saturation in the oral cavity can vary from pocket to pocket

- oxygen tension on tongue varies from 12-16%

- oxygen content varies by location

- most oral organisms are facultative or obligate anaerobes

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Early colonizers

Aerotolerant

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Late colonizers

Anaerobic

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Anaerobiosis *example

- 100 bacteria colonize an oral cavity

- they scavenge for the oxygen

- they then use up all the oxygen

- once all the oxygen is gone, the anerobic bacteria come in and they can survive because there is less oxygen

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Factors affecting microbial growth in oral cavity (pH)

- 6.75-7.25

- regulated by saliva

- variation between location

- variation in disease

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Upper palate pH

7.34

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Buccal Mucosa pH

6.3

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Gingival cervice pH

6.9

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Oral cavity disease pH

7.4+

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how does consumption of sugar affect oral cavity ph?

- the ph gets lower with sugar

- the sugar is fermented to acid

- the acid lowers the ph

- the carries causing strep mutants like the low ph and the sugar and they cause the carries

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Ph change after eating

- Leads to bacterial changes

- Saliva stays at a relativly stable pH to go back to normal after eating

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Factors affecting microbial growth in oral cavity (Nutrients)

- endogenous (already present in your mouth)

- Saliva (amino acids, peptides, proteins)

- GCF (Albumin, protein)

- Bacterial Products (micro and macronutrients)

- Exogenous

- dietary (fermentable carbs, metals)

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Factors affecting microbial growth in oral cavity (Host defences)

The immune system

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Factors affecting microbial growth in oral cavity (Host genetics)

- genetically prone to more diseases

- deflect in immune responses

- can infect the neutrophils

- less neutrophils (more prone to fungal infection)

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Factors affecting microbial growth in oral cavity (Antimicrobial agents and inhibitors)

- antibiotics

- toothpaste and mouthwash

*listerine= antimicrobial agent

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Saliva Flow

- Physical removal of microorganisms

- takes microbes with out when you swallow

- non specific defense factor

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Mucin/agglutinins

- Physical removal of microorganisms

- sticky carbohydrates

- grabs bacteria as you swallow

- non specific defense factor

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Lysozyme-protease- anion

- degrades cell wall

- cell lysis

- non specific defense factor

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Lactoferrin

- iron binding protein in low iron saliva

- iron sequestration

- non specific defense factor

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Apo- Lactoferrin

- cell killing

- non specific defense factor

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Sialoperoxidase System

- hypothiocyanite production (neutral pH)

- hypocyanous acid production (low pH)

- non specific defense factor

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Histatins

*most antifungal protein in the human body

- some antibacterial activity

- non specific defense factor

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Defensins

- (a and b)

- more broad

- antimicrobial

- immunomodulatory activity

- non specific defense factor

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Cytstatins, SLPI and TIMP

- cystenine, serine and metallo protease inhibitors

- non specific defense factor

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Chitinase and Chromogranin

- non specific defense factor

- kills fungi

- antifungal

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Cathelicidin and Calprotectin

- non specific defense factor

- antimicrobials

- saliva has a huge amount of antimicrobial peptides

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Intra-epithial lymphocytes and langerhans cells

- specific defense factor

- cellular barrier to penetrating bacteria and/or antigens

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Sgla

- secretory

- primary in saliva

- prevents microbial adhesion and metabolism

- specific defense factor

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IgG, IgA, IgM

- prevents microbial adhesion and metabolism

- opsonins

- complement activator

- specific defense factor

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Complement

- activates neutrophils

- specific defense factor

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Neutrophils/macrophages

- phagocytosis

- specific defense factor

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Acquired pellicle

- Initiates within seconds of any clean surface being introduced in the oral cavity

- Bacteria rarely come into direct contact with the tooth enamel

- teeth are also being flushed with saliva

- same protectors are applied (flow rate and IgA)

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Constraints on bacteria (Colonization)

- adherance properties

- synergistic bacteria

- nutritional substrates

- temp and moisture

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Constraints on bacteria (Expulsion or Death)

- agglutination

- antimicrobial properties of saliva

- mechanical shearing

- antagonistic bacteria

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Antimicrobial agents

- flouride

- chlorohexidine

- Antibiotics

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Biofilms (definition)

matrix enclosed microbial accretions that adhere to biological or non biological surfaces

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3 steps of biofilm development

1. surface attachment

2. microcolonies

3. macro colonies

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Surface attachment (biofilm development)

- initally reversible

- free floating bacteria (planktonic) bacteria attach to conditioning film

- the film is on an abiotic/biotic surface

- the now sessile bacteria attach to the conditioning film

- it wants to stay on the tissue

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Conditioning film

Sticky protein and sugar

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Abiotic/biotic surface

Tounge tissue

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Microcolonies (biofilm development)

- cell proliferation

- coaggregation

- creates an EPS matrix

- basic first layer

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Macrocolonies/maturation (biofilm development)

- mushroom and tower like structures

- 3D structure

- cell detachment

- cells will die or escape when the tower gets to be too much

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Dispersal (biofilm development)

- introduction of dispersing signals

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Growth curve

a predictable pattern of a bacterial population growth in a closed system

- S curve, lag phase, log (exponential) phase, stationary phase, death phase

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Growth dynamics in a biofilm (populations)

Increase in population= more need for nutrients and oxygen

Bigger biofim= harder for oxygen to get in

- s curve

<p>Increase in population= more need for nutrients and oxygen</p><p>Bigger biofim= harder for oxygen to get in</p><p>- s curve</p>
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Growth dynamics in a biofilm (Individual cell)

Increase in population= increase in limitations (nutrients/oxygen)= Increase in cell death

<p>Increase in population= increase in limitations (nutrients/oxygen)= Increase in cell death</p>
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Growth dynamics in a biofilm (Majority of cells in core)

- increae in cells attached to the biofilm matrix (no longer in contact with the base)

- decrease in cells in contact with bulk liquid and substratum surface (so tightly packed)

- as it grows, most cells come into contact with the matrix, but only one layer touches the base

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Intercellular

between 2 or more cells

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quorum sensing

intercellular signaling as a regulatory mechanism that plays a significant role in coordinating various stages of biofilm formation

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quorum sensing (Uses)

- responds to population density

- controls genes expression

- capable of auto induction

- self recognized secreted molecules (autoinducers)

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Autoinducers

- the signaling molecules produced and used for quorum sensing

- the cell that is secreting it can also be induced by it

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quorum sensing (response to population density)

-When a critical mass of a population is reached, bacteria see the lack of nutrients

- some die

- some send signals to other bacteria to also die

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Autoinducers (examples)

- AHL (serum)

- AI-2 (salmonella)

- Peptides (staph. aureus, strep mutans- carries inducing bacteria)

- Fungal QS molecules- secreted by candida

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Quorum sensing controls population size

- population density is the key factor

- critical mass of the population must be reached before the process kicks in

- only when the microcolony is mature enough, the quorum sensing can kick in

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Dental Biofilms

- plaque

- a complex microbial community on the surface of teeth

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Stages of dental plaque formation (association)

1. pellice formation on the surface of teeth (made of antigens with specific shapes

2. Passive transport

3. reversible attachment (weak van der waals forces)

* this is passive, just when the bacteria comes in contact with your teeth, but can still be washed away

<p>1. pellice formation on the surface of teeth (made of antigens with specific shapes</p><p>2. Passive transport </p><p>3. reversible attachment (weak van der waals forces)</p><p>* this is passive, just when the bacteria comes in contact with your teeth, but can still be washed away</p>
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Stages of dental plaque formation (Adhesion)

4. Adhesion- receptor (the receptors lock with the ligand)- permanent, irreversible and short range

5. coadhesion (binds with the lectins)

*these are the late colonizers

<p>4. Adhesion- receptor (the receptors lock with the ligand)- permanent, irreversible and short range</p><p>5. coadhesion (binds with the lectins)</p><p>*these are the late colonizers</p>
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Acquired Enamel Pellicle

- Bacteria dont directly come in contact with your enamel, the bacteria sit on the pellice and secrete acids

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Acquired Enamel Pellicle (salivary proteins and glycoproteins)

- sialic acid

- proline rich proteins

- mucins

- agglutinin

- amylase (digestion of sugars)

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Acquired Enamel Pellicle (Bacterial Components)

- glucan

- glucosyltransferases (enzymes that can move glucagon molecules from one protein to another)

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Pellicle Formation

- Initiated within seconds of any clean surface being introduced to the oral cavity

- spontaneous

- can even occur on crowns

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Association attachment

- weak, reversible attachment

- least intimate form of surface interaction

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Adhesion attachment

- more intimate form of attachment than association

- stable, irreversible attachment

- surface components (adhesions) interacting with complementary molecules (pellice or cell receptor) on the host surface

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Invasion attachment

Penetration of the mucosal border by bacteria

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Receptors

- pilli or fimbriae

- afimbrial adhesins

- receptors can be either on the fimbriae or directly on the surface of the bacteria

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Coaggregation/coadhestion

- interbacterial interaction

- inital bacteria layer forms

- other bacteria then come into contact with that bacteria

- 2 binding bacteria will agglutinate or precipitate out of a solution

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Stages of dental plaque formation (Maturation)

- each bacteria would consume nutrients and undergo fermentation

- metabolic interactions

- environment interactions

- gradient (oxygen and nutrients)

- matrix (proteins)

*after this they detach

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Sucession of microbes in the oral community

- Closer to receptors = earlier

colonizers

- Ones at bottom = irreversible

attachment since on receptors

- Ones on top = just attached to

each other, reversible

Green Ys = ligands

- All the bacteria interact with the

receptors through the ligands

<p>- Closer to receptors = earlier</p><p>colonizers</p><p>- Ones at bottom = irreversible</p><p>attachment since on receptors</p><p>- Ones on top = just attached to</p><p>each other, reversible</p><p>Green Ys = ligands</p><p>- All the bacteria interact with the</p><p>receptors through the ligands</p>
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Co-Adhesion

late colonizer binds to

another (early) bacteria

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Bacteriocins

- peptide antibiotics

- One bacteria makes it to kill other bacteria

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Organic acids

Can lower pH which kills other bacteria

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Microbial Plaque interactions (beneficial)

- enzyme complementation (bacteria lending enzymes another bacteria needs

- food chains and webs (bacteria producing food that is eaten by another bacteria)

- coadhesion (can bind bacteria instead of something else)

- cell-cell signalling

- gene transfer (within the microbial community)

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Microbial Plaque interactions (Harmful)

- bacteriocins (produced by bacteria, to kill bacteria)

- hydrogen peroxide (kills other by producing oxidative stress)

- organic acids

- low pH

- nutrient competition

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Microbial interactions in a plaque

- in the sugar, bacteria A knocks off the triangle, B knocks off the star and they work together to break it off of the protein backbone

<p>- in the sugar, bacteria A knocks off the triangle, B knocks off the star and they work together to break it off of the protein backbone</p>
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Microbial sucession

- as dental plaque develops, local enviroment changes

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Food Chain

bacteria consume the metabolic byproducts or waste of other microbes for food

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Food Chain (dental plaque)

Fuels the progression of oral diseases like cavities and gum disease

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The superorganism

- 100 trillion bacteria colonzing the human body

- our microbes and our metabolism

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10 bacteria

1 human cell

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100 bacterial genes

1 human gene

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The holobiont

The host organism and all its symbiotic microbial residents

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Microbiome

All microorganisms in a particular habitat and their collective genomes

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Human Microbiome

Gut, skin and all other human microbiomes