Showing posts with label Photography. Show all posts
Showing posts with label Photography. Show all posts

Wednesday, July 25, 2012

Flying Through Cells


                I’m back!  I brought movies!  Be excited.

                So, I’m currently working on a paper that refuses to die.  In the past few weeks, I’ve had to revisit some old techniques to generate more data (that will hopefully statistically say what I want – fingers crossed!).  While doing so, I’ve generated some very pretty images of cells that I’d like to share with you.

                In my “You use that inlab?” post, I discussed a little bit about how we grew cells on coverslips, put it on a microscope slide (painted it with nail polish!) and then looked at our cells under a microscope.  In Figure 63.2, I showed a side view of the cells.  Many people think of cells as flat, two dimensional beings because that is how they are always drawn in pictures.  Obviously, cells exist in a three dimensional world and have, in addition to length and width, height.


                When these slides that we create are placed on a standard microscope and we look through the eyepiece, we are seeing light coming from all heights in the cell.  From the tippy top of the cell all the way through the cellular structures, we are seeing all these things inside a cell piled on top of each other.  Imagine flying over a high-rise building made of glass.  Looking with a regular microscope is the same as simply looking down from your helicopter and seeing the building: you’ll see the top and some floors beneath, but it will be hard to discern what is on different floors with any clarity.  

                Wouldn’t it be cool if we had a microscope that allowed us to look at a very thin slice of a cell at any height?  Pretend you could cut the cell into ten pieces with a teeny little knife and then look at each individual slice.  It would be the same as seeing each individual floor within the glass building without having to look through the other floors.   Wouldn’t that be interesting?  

It turns out such a microscope exists!  It’s called a confocal microscope and this is the instrument I have spent nearly eight hours on in the past week.  The thing is so smart that I feel like an idiot using it and am often nervous that I’m breaking it.  Today, I was so overwhelmed with all the settings I had to change from the previous user that I simply restarted the program.  In truth, what I’m doing with the confocal is elementary; other users in my lab take live images of fruit fly ovaries depositing eggs.  I have no idea how to do this, but I can look at cells I’ve grown in a petri dish!     
  
                I’m going to show you some of those images now, but first I want to re-acquaint you with the major parts of a cell and introduce you to an interesting cell organelle called the Golgi body (always with a capital G).  Figure 4.2 (woo – way back!) shows you some of the major cell parts.  This picture is representing a cell at one particular height.  Remember that the nucleus, ribosomes, etc. all have height in addition in length and width.   Suffice it to say that what is shown is not exhaustive of all the cell parts.  Of the many things left out, one is the Golgi body, which I did go back and draw in for you in Figure 70.1.  It’s a big, amorphous looking thing, isn’t it?




                The Golgi body (also called the Golgi complex or the Golgi apparatus) is responsible for packaging proteins that need to be sent outside the cell’s plasma membrane.  It’s the shipping department.  How it does this is not important, but it’s a necessary and important organelle within the cell.

                The cells I looked at in the confocal this week have their Golgi bodies marked with a fluorescent protein.  Remember fluorescent proteins – I talked about them in my Fluorescent Proteins post?  If not, the summary is that the Golgi body in these cells will glow in a blu-ish color* due to the presence of cyan fluorescent protein there.  

                With confocal microscopy allowing us to look at a cell at all heights and a fluorescent protein highlighting the Golgi body for us, we can fly through a cell.  Video 70.1 takes you from the top of a cell all the way through it to the bottom of the cell.  There is one cell in the middle of the screen.  The Golgi will be quite blue and the plasma membrane is only poorly outlined, but you should be able to clearly see a cell nonetheless.  I’ve tried to schematically explain this in Figure 70.2.  I could have marked many different things in a cell; it did not have to be the Golgi body.  I could have chosen the nucleus, the plasma membrane, small membrane bodies called endosomes, or even large protein complexes.  The choices of colors and ways to mark a protein are somewhat endless – this is just what my project demanded.












                Enjoy the ride!

Confocal miscroscope – a specialized microscope that allows for seeing “slices” of a cell.  These slices can then be stacked together to make a video of a three-dimensional cell (also called a z-stack).

Organelle – Specialized areas in cells that have specific functions.  Example: nucleus, Golgi Body, ribosomes, vesicles, endoplasmic reticulum, etc

* - The camera on the confocal only detects photons, not color – I’ve added in the color.


REFERENCES

Alberts et al. “Molecular Biology of the Cell, 4th Edition.”  Garland Science, New York, New York. (2002).


Saturday, August 6, 2011

Slideshow Pictures - Microscopes and Photography

               Several weeks ago, I put up a slideshow.  I didn’t tell you what the pictures were because it’s fun to imagine what they could be or should be before being clued in.  Today, I’ll reveal what each picture is and how the image was captured, but before we get into that, I’d like discuss a bit about “the small world.”  

                The human eye is capable of seeing large things.  We can easily discern trees, houses, cars and people.  On the smaller edge of life, we are able to resolve two blades of grass or two strands of hair.  Unfortunately, there is a limit to our eyes.  The “small world” is invisible to us if we only have eyes available to us as tools.  For example, we cannot see the cells and proteins that are running our bodies.  The limit of the human eye is ~ 100 µm (micrometers).    

                Luckily, to see smaller things, we have other tools available: light microscopes, electron microscopes, and crystallography (among other tools, such as atomic force microscopy).  Table 28.1 breaks down the size of what each tool will allow us to see and provides examples of some real world objects that are indeed that size.    
  
                                                                                                                                       
Tool
Smallest Size it can See
Examples
Human Eye
Down to 100 µm
Blades of grass, strands of hair
Light Microscope
Down to 0.1 – 1 µm
Cells
Electron Microscope
Down to 0.0005 µm
Large protein structures, viruses
Crystallography
Down to 1 Å (angstrom)
"single" proteins, atoms
Table 28.1 – Visualizing our “small world”


Light microscopy has come a long way from its humble beginnings.  Currently, scientists are able to manipulate cells and open up color and contrast to this “small world” that our eyes can’t see.  We are able to insert fluorescent proteins into cells and watch them move around; we are able to stain certain places in cells to clearly see the outline of plasma membranes, nuclei, endoplasmic reticulum or Golgi bodies.  Thanks to Roger Tsien, Ph.D. of UCSD (University of California, San Diego), we are able to color these objects and all kinds of proteins with a whole rainbow of options.  And, most importantly, we able to see things happen in side cells in both real time and at points along the way.  Light microscopy is a powerful and valuable technique.

                Nikon (of camera fame) offers a contest every year called the Nikon Small World – Photomicrography Competition.  It is open to anyone over the age of 18 with an interest in photography of images taken through a light microscope.  (read = you do not have to be a scientist to enter and it is an international contest).  No limit exists on what the picture should be of, so you can see anything from cells to flowers to snowflakes in a highly magnified and colorful format.  First place is $3,000 towards the purchase of Nikon equipment (they are tooting their own horn here) and the pictures go on a tour around the country.  For the past several years, the exhibit had come to my place of work and I was able to see all the pictures.  Some of them are truly gorgeous!

                A few weeks ago, I went through the galleries of past exhibits (http://www.nikonsmallworld.com/gallery) and picked a few images that were visually interesting and/or showed a common object in a new way.  And thus, my slideshow was born.




2007 Winner of Nikon Small World Contest
Photographer: Gloria Kwon, Memorial Sloan-Kettering Institute (New York, New York, USA)

What is it? A mouse embryo at 18.5 days.  Mouse embryo is in red and the yolk sac is in green.  

Magnification = 17 times







2005, Image of Distinction

Photographer: Viktor Sykora, Institute of Pathophysiology, Charles University (Prague, Czech Republic)

What is it? Drosera scorpiodes – a pygmy sundew (carnivorous plant!)  Native to Southwest Australia

Magnification = 30 times






 2005, 12th Place

Photographer: Edy Kieser (Ennenda, Switzerland)

What is it? Crystallized potassium chlorate.  Think of it as looking at grains of salt very closely!

Magnification = 40 times






  2010, 12th Place


Photographer: Dr. Gregory Rouse, Scripps Institution of Oceanography (La Jolla, California, USA)

What is it? A juvenile bivalve mollusk (like clams, oysters, mussels or scallops).  This particular one is from the species Lima.

Magnification = 10 times







2010, Honorable Mention

Photographer: Dr. Alvaro Migotto, Centro de Biologia Marinha, Universidade de Sao Paulo (Sao Paulo, Brazil)

What is it? Enchinaster brasiliensis (a starfish!) embryo at four cell stage

Magnification = 60 times







1987, 1st Place

Photographers: Julie Macklin and Dr. Graeme Laver, Australian National University, John Curtin School of Medical Research (Canberra, Australia)

What is it? Crystals of influenza virus protein neuramindase (see Influenza Series!)

Magnification = 14 times


If you are interested to see if the Small World Exhibit comes near you, check out this website: http://www.nikonsmallworld.com/tour

Want to see how a light microscope works?  Here’s a wonderful website from one of my favorite podcasts/websites: http://science.howstuffworks.com/light-microscope.htm


I guess I need a new slideshow now!  I’ll work on it.  Stay tuned!

Micrometer: 1 micrometer = 1 x 10-6 meters or 0.000001 meters (super small!)

Light microscope: uses light and two lenses to magnify images

Electron microscope: uses electrons to illuminate objects instead of light

Crystallography: a technique that shoots X-rays at proteins to discern their structures

Atomic Force Microscopy: a technique that uses a very sensitive cantilever and tip to study surfaces.  It can sense height differences of < 0.001 µm.

Å(Angstrom): 1 Angstrom = 1 x 10-10 meters or 0.0000000001 meters (über small)

REFERENCES

Roger Tsien’s Laboratory: http://www.tsienlab.ucsd.edu/

Nikon Small World official webpage: http://www.nikonsmallworld.com/