Post Mortem Tissue Flashcards

1
Q

Hypothesis Driven Research

A

Begins with brain donation -
use PCR and ISH too look at the gene
-Look at protein using WB and IHC
-IHC – expression and location/cellularl/subcellular
-specific to antigen of interest
- direct ( AB labelled with fluorescent tag) and indirect (amplify signal) approach

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2
Q

Alzheimers and Astrocytes - Case study

Simpson JE et al

A

• Astrocytes play a role in maintaining homeostasis within the brain
• Dynamic cells that are actively involved in inflammatory & neurodegenerative events
-Secretion of cytokines & neurotoxic molecules
-Maintenance of extracellular environment
IHC
• GFAP- Main intermediate filament
• GFAP upreg in Reactive astrocytes
• EAAT2 (excitatory amino acid transporter-2)
 EAAT2 main regulator of extracellular neurotransmitter glutamate
GFAP labelled astrocyte body
Different markers different patterns of staining

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3
Q

Case study Quantification of Expression

A
  • 3 very distinct patterns of staining
  • Computer software
  • Take images from outer cortex in to the WM then use software
  • Quantitative assessment – Analysis^D software (% area)
  • Organized into Braak group
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4
Q

Case study Conclusion

A
  • Gliosis & a change of astrocyte function is a common feature in the ageing population & partially correlates with Alzheimer-type pathology.
  • Astrocyte response may relate to other factors independent of Alzheimer-type pathology.
  • Case to case variation detected – error bars
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5
Q

Hypothesis Generating Research - overview

A

Microarray analysis of gene expression changers

Mass spectrometry analysis of protein changes

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6
Q

Hypothesis Generating Research

A
  • Laser Capture Microdissection
  • A number of studies of cellular identity have extrapolated from whole tissue investigations.
  • Alternatively investigations have been carried out using tissue culture models.
  • LCM allows the isolation of individual cells from their normal environment BUT untainted by other cell types.
  • Issue with cell culture- isolation whereas in the brain the cells interact a lot with their surrounding
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7
Q

LCM

A

thermoplastic polymer transfer film
- Laser beam on the activated film tissue then slide on the tissue

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8
Q

Arcturus Pixcell system-applications

A
DNA sequencing
DNA fingerprinting
cDNA microarrays
RT-PCR
Proteomics
Western blots
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9
Q

Arcturus Pixcell system- challenges

A
  • Collect a pure cell population from heterogeneous tissue
  • Obtain enough material for analysis
  • Minimize sample loss during processing
  • Maintain macromolecule integrity
  • Reproducible analysis
  • Laser may induce damage
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10
Q

Small sample preparation

A
  • Preparation techniques designed for accurate identification of target cells
  • Preservation of biologically relevant molecules for downstream analysis
  • Dehydration required to inactivate nucleases and facilitate microdissection
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11
Q

Common Tissue Staining Techniques:

A

Colorimetric (H&E, Toluidine blue etc.)
Immunohistochemistry
In situ Hybridization (ISH)
Fluorescence

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12
Q

Staining must:

A

1) Facilitate cell identification
2) Preserve biomolecule integrity
3) Not inhibit LCM

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13
Q

How does LCM work

?

A

Absorbs near-IR energy
Distends predictably, evenly, reproducibly to enable selective targeting
Prevents laser energy from reaching sample
Becomes adhesive
Adhesion overcomes opposing forces to enable selective capture

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14
Q

LCM of motor Neurone

A

using Tolulin blue staining

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15
Q

Look at RNA quality

A

RNA samples run on Agilent Bioanalyser

Quality measured by presence of rRNA peaks & lack of degradation
-	Isolate RNA and run on Bioanalyser 
-	Generates a RNA integrity no. 
-	Quality measured but rRNA peaks 
Confirm enriched pop – PCR 
Look for NFL/GFAP/vWF/Beta-actin
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16
Q

Microarray analysis of LCM-ed cells.

A

using Affymetix gene chips

17
Q

GeneChip Characteristics

A

• Each probe is an oligomer of 25 bases
• Probes come in pairs: perfect match (PM) and a mismatch (MM) probe
– The 13th nucleotide in the mismatch probe is non-complementary
– Mismatch probes control for hybridisation specificity
• Each transcript represented by 11 probe pairs
Issues of perfect match and mismatch of probes
On the chip – genome wide expression on one chip

18
Q

Human Genome U133 Plus 2.0 Array

A

Genome wide expression on one microarray chip

19
Q

Experimental design and considerations

A

Good experimental design is essential for achieving maximum information of statistical significance
-Number of biological replicates
3 replicates for low variability samples e.g. cell lines
5-6 replicates for animal models e.g. Tg mice
>10 replicates for high variability samples e.g. human tissue

20
Q

On the chip - whole process

A
  1. mRNA extracted from cell
    - Reverse transcriptase
  2. cDNA
    - Transcription
  3. Biotin labeled cRNA
    - Fragmentation
  4. Fragmented biotin labeled cRNA
  5. Hybridize with Gene chip expression Array
    - wash and stain
    - Scan and Quantitate
21
Q

Follow up preliminary Analysis

A
  • Initial Analysis using Affymetrix software
  • QC on hybridisation and scanning- Hybridisation controls checked
  • Creates data table of hybridisation signals - All genes listed with calculated signal intensities
  • Creates experimental report file - % genes present, marginal, absent
  • Provides snap shot of all genes expressed in the sample when RNA was extracted
22
Q

volcano plot

A

Volcano plots compare replicates of one sample v the other
Plots show fold change (one gene expressed more in one set than another) v probability that the result is significant , so grey are those genes changes less than 2 fold and not significant, purple are those not significantly altered, and orange those altered but not significant

23
Q

Hierachical Clustering

A

Groups together samples with similar gene expression profiles
Analysis of all replicates

24
Q

Characterisation of astrocyte gene expression changes in relation to AD pathology - Case study summary

A

Analysis shows downreg of signalling pathways – showing changes in insulin signalling down regulated in the astrocytes within the brain
-Gene expression profile of astrocytes with respect to increasing Braak stage reveals complex pattern of astrocyte dysfunction

Specific pathways affected include cell signalling, cytoskeleton & cell junctions

Impact on astrocyte survival & function including homeostasis

Astrocyte pathology may impair their neurotrophic function thereby contributing to the pathogenesis of Alzheimer-type pathology in the ageing brain