Myxobacteria movement Cell Tracking Tanya Kazakova University of Notre Dame Advisor: Dr. Mark Alber.

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Myxobacteria movement Cell Tracking Tanya Kazakova University of Notre Dame Advisor: Dr. Mark Alber
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Transcript of Myxobacteria movement Cell Tracking Tanya Kazakova University of Notre Dame Advisor: Dr. Mark Alber.

Page 1: Myxobacteria movement Cell Tracking Tanya Kazakova University of Notre Dame Advisor: Dr. Mark Alber.

Myxobacteria movementCell Tracking

Tanya KazakovaUniversity of Notre DameAdvisor: Dr. Mark Alber

Page 2: Myxobacteria movement Cell Tracking Tanya Kazakova University of Notre Dame Advisor: Dr. Mark Alber.

About Myxobacteria

The myxobacteria are Gram-negative organisms (0.5 x 5-7 mm rods) that are capable of multicellular, social behavior.

In the presence of nutrients, swarms of myxobacteria feed cooperatively. If the food supply is limited, the myxobacteria form aggregates called “fruiting bodies.”

Page 3: Myxobacteria movement Cell Tracking Tanya Kazakova University of Notre Dame Advisor: Dr. Mark Alber.

Developmental Cycle for Myxobacteria

COUPLING CELL MOVEMENT TO MULTICELLULAR DEVELOPMENT IN MYXOBACTERIA by Dale Kaiser Nature Reviews Microbiology 1, 45-54 (2003)

Page 4: Myxobacteria movement Cell Tracking Tanya Kazakova University of Notre Dame Advisor: Dr. Mark Alber.

Two engines of motility: AA and SS

A+S+

A+S-A-S+

AAdventurous SSocial

Cells move as a groupCells move alone

A-S- cells are unable to swarm or form fruiting bodies.

Page 5: Myxobacteria movement Cell Tracking Tanya Kazakova University of Notre Dame Advisor: Dr. Mark Alber.

Two engines of motility (cont)

S-motilityThe pilus extends ahead of a cell, adheres to the fibrils on the cells ahead of it and then retracts, pulling the leading end of the piliated cell forward.

A-motilityCell is pushed by slime secretion.

At any instant, only one end secretes slime and only one end assembles pili.One end cannot do both at the same time.

Page 6: Myxobacteria movement Cell Tracking Tanya Kazakova University of Notre Dame Advisor: Dr. Mark Alber.

Scenario

Suppose we have an image produced to exhibit the results of a biology experiment. In most cases, we will have a black and white drawing such as one exhibited on the left.

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Goals

General: Get the most information from the

image

Specific:– Track individual cells– Make cell density more obvious– Show the boundaries of expanding front– Get rid of noise

Page 8: Myxobacteria movement Cell Tracking Tanya Kazakova University of Notre Dame Advisor: Dr. Mark Alber.

About Scion Image

National Institutes of Health Package

http://rsb.info.nih.gov/nih-image/

Page 9: Myxobacteria movement Cell Tracking Tanya Kazakova University of Notre Dame Advisor: Dr. Mark Alber.

Using SI: Options -> Color Tables

8 Grays 8 Grays->Fire 1

Original Image

Fire 1

Page 10: Myxobacteria movement Cell Tracking Tanya Kazakova University of Notre Dame Advisor: Dr. Mark Alber.

Example

Page 11: Myxobacteria movement Cell Tracking Tanya Kazakova University of Notre Dame Advisor: Dr. Mark Alber.

Cell Tracking Features

Page 12: Myxobacteria movement Cell Tracking Tanya Kazakova University of Notre Dame Advisor: Dr. Mark Alber.

MATLAB

Page 13: Myxobacteria movement Cell Tracking Tanya Kazakova University of Notre Dame Advisor: Dr. Mark Alber.

Example

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Possible Directions for Future Work