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review WS
review WS

... Chapter 10 Quiz Review Mitosis Question 1. As a cell grows – which grows fast – volume or surface area? 2. What are three reasons that cells divide? 3. How fast can E.Coli cells divide? 4. What two types of cells divide on a daily basis? 5. How do cells know when to stop growing? 6. When cells have ...
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... 3. Carbohydrate molecules (attached to proteins or lipids) have antenna to help cells identify or recognize other cells 4. Cholesterol (lipid) that is found in the fatty acid tails helps the cell membrane maintain it’s flexible shape. ...
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Cells - Cinnaminson

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Cell Biology - hrsbstaff.ednet.ns.ca

... and cellular debris. • Lysosomes digest excess or worn-out organelles, food particles, and engulf viruses or bacteria. • Tay-Sachs disease occurs when the lysosome is missing the enzyme needed to digest a lipid found in nerve cells. ▫ As a result the lipid accumulates and nerve cells are damaged as ...
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Organ-on-a-chip

An organ-on-a-chip (OC) is a multi-channel 3-D microfluidic cell culture chip that simulates the activities, mechanics and physiological response of entire organs and organ systems. It constitutes the subject matter of significant biomedical engineering research, more precisely in bio-MEMS. The convergence of labs-on-chips (LOCs) and cell biology has permitted the study of human physiology in an organ-specific context, introducing a novel model of in vitro multicellular human organisms. One day, they will perhaps abolish the need for animals in drug development and toxin testing.Although multiple publications claim to have translated organ functions onto this interface, the movement towards this microfluidic application is still in its infancy. Organs-on-chips will vary in design and approach between different researchers. As such, validation and optimization of these systems will likely be a long process. Organs that have been simulated by microfluidic devices include the heart, the lung, kidney, artery, bone, cartilage, skin and more.Nevertheless, building valid artificial organs requires not only a precise cellular manipulation, but a detailed understanding of the human body’s fundamental intricate response to any event. A common concern with organs-on-chips lies in the isolation of organs during testing. ""If you don’t use as close to the total physiological system that you can, you’re likely to run into troubles"" says William Haseltine, founder of Rockville, Maryland. Microfabrication, microelectronics and microfluidics offer the prospect of modeling sophisticated in vitro physiological responses under accurately simulated conditions.
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