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Diagram of Cellular Differentiation Methods Poster

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Diagram of Cellular Differentiation Methods Poster

Diagram of Cellular Differentiation Methods Poster

In developmental biology, cellular differentiation is the process by which a less specialised cell becomes a more specialised cell type. Differentiation occurs numerous times during the development of a multicellular organism as the organism changes from a simple zygote to a complex system of tissues and cell types. Differentiation is a common process in adults as well: adult stem cells divide and create fully differentiated daughter cells during tissue repair and during normal cell turnover. Differentiation dramatically changes a cell's size, shape, membrane potential, metabolic activity, and responsiveness to signals. These changes are largely due to highly controlled modifications in gene expression. With a few exceptions, cellular differentiation almost never involves a change in the DNA sequence itself. Thus, different cells can have very different physical characteristics despite having the same genome. Dedifferentiation to totipotency or pluripotency: an overview of methods. Various methods exist to revert adult somatic cells to pluripotency or totipotency. In the case of totipotency, reprogramming is mediated through a mature metaphase II oocyte as in somatic cell nuclear transfer (Wilmut et al., 1997). Recent work has demonstrated the feasibility of enucleated zygotes or early blastomeres chemically arrested during mitosis, such that nuclear envelope break down occurs, to support reprogramming to totipotency in a process called chromosome transfer (Egli and Eggan, 2010). Direct reprogramming methods support reversion to pluripotency; though, vehicles and biotypes vary considerably in efficiencies (Takahashi and Yamanaka, 2006). Viral-mediated transduction robustly supports dedifferentiation to pluripotency through retroviral or DNA-viral routes but carries the onus of insertional inactivation. Additionally, epigenetic reprogramming by enforced expression of OSKM through DNA routes exists such as plasmid DNA, minicircles, transposons, episomes and DNA mulicistronic construct targeting by homologous recombination has also been demonstrated; however, these methods suffer from the burden to potentially alter the recipient genome by gene insertion (Ho et al., 2010). While protein-mediated transduction supports reprogramming adult cells to pluripotency, the method is cumbersome and requires recombinant protein expression and purification expertise, and reprograms albeit at very low frequencies (Kim et al., 2009). A major obstacle of using RNA for reprogramming is its lability and that single-stranded RNA biotypes trigger innate antiviral defence pathways such as interferon and NF-kB-dependent pathways. In vitro transcribed RNA, containing stabilising modifications such as 5-methylguanosine capping or substituted ribonucleobases, e.g. pseudouracil, is 35-fold more efficient than viral transduction and has the additional benefit of not altering the somatic genome (Warren et al., 2010). An overarching goal of reprogramming methods is to replace genes with small molecules to assist in reprogramming. No cocktail has been identified to completely reprogram adult cells to totipotency or pluripotency, but many examples exist that improve the overall efficiency of the process and can supplant one or more genes by direct reprogramming routes (Feng et al., 2009; Zhu et al., 2010). Image reproduction rights can be found in the link near the bottom of this description. Sign up to Mr. Rebates for FREE and save 12% on any zazzle order in addition to a $5.00 sign up bonus All Rights Reserved; without: prejudice, recourse or notice (U.C.C. 1-308) Image Reproduction Rights: http://en.wikipedia.org/w/index.php?title=File:Dedifferentiation_Methods_%282010%29_-_Bischoff,_Steven_R.tif&page=1 differentiation "Cellular differentiation" "cell biology" "cellular biology" cell biology diagram "differentiation method" totipotency pluripotency chart diagram science "science chart" "science diagram" "school chart" "school diagram" "teacher's aid"

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5 out of 5 stars rating
By Donna Y.2 June 2022Verified Purchase
Print, Size: 60.96cm x 91.44cm, Media: Value Poster Paper (Semi-Gloss)
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I originally ordered this print in a larger size but was not pleased with the clarity of it. When I contacted Zazzle, they responded really quickly and were very helpful. I was able to reorder the print in a smaller size and it was shipped to me within a couple of weeks. The print was packaged well to ensure there was no damage during transit (Eco friendly, too!), and I am really pleased with it. I am so grateful to the customer service team for the professional way they handled my order. I had this printed on matt finish card and I was really pleased with the quality. The colours were rich and the image sharp.
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By Mignon G.22 December 2021Verified Purchase
Print, Size: 41.91cm x 64.77cm, Media: Value Poster Paper (Semi-Gloss)
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Very happy with this product. No complaints.
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By Vincent H.5 November 2024Verified Purchase
Print, Size: 121.92cm x 81.28cm, Media: Value Poster Paper (Semi-Gloss)
Arrived very fast, even three days early. Havent opened as i will wgive to my framer next week. But the team were amazing to deal with and i highly recomend based on that alone! Oh, and im from NZ. .

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Product ID: 228510229265579076
Posted on 26/07/2011, 1:58 PM
Rating: G