Innovations_in_Molecular_Mechanisms_and_Tissue_Engineering_(Stem_Cell_Biology_and_Regenerative_Medicine)

(Brent) #1

20



  1. Looso M, Michel CS, Konzer A et al (2012) Spiked-in pulsed in vivo labeling identifi es a new
    member of the ccn family in regenerating newt hearts. J Proteome Res 11:4693–4704.
    doi: 10.1021/pr300521p

  2. Keinath MC, Timoshevskiy VA, Timoshevskaya NY et al (2015) Initial characterization of
    the large genome of the salamander Ambystoma mexicanum using shotgun and laser capture
    chromosome sequencing. Sci Rep 5:16413. doi: 10.1038/srep16413

  3. Roy S, Gardiner DM, Bryant SV (2000) Vaccinia as a tool for functional analysis in regener-
    ating limbs: ectopic expression of Shh. Dev Biol 218:199–205. doi: 10.1006/dbio.1999.9556

  4. Laube F, Heister M, Scholz C et al (2006) Re-programming of newt cardiomyocytes is
    induced by tissue regeneration. J Cell Sci 119:4719–4729. doi: 10.1242/jcs.03252

  5. Whited JL, Tsai SL, Beier KT et al (2013) Pseudotyped retroviruses for infecting axolotl
    in vivo and in vitro. Development 140:1137–1146. doi: 10.1242/dev.087734

  6. Khattak S, Sandoval-Guzmán T, Stanke N et al (2013) Foamy virus for effi cient gene transfer
    in regeneration studies. BMC Dev Biol 13:17. doi: 10.1128/JVI.76.8.3774-3783.2002

  7. Casco Robles MM, Yamada S, Miura T, Chiba C (2010) Simple and effi cient transgenesis
    with I-SceI meganuclease in the newt, Cynops pyrrhogaster. Dev Dyn 239:3275–3284.
    doi: 10.1002/dvdy.22463

  8. Hayashi T, Yokotani N, Tane S et al (2013) Molecular genetic system for regenerative studies
    using newts. Dev Growth Differ 55:229–236. doi: 10.1111/dgd.12019

  9. Hayashi T, Sakamoto K, Sakuma T et al (2014) Transcription activator-like effector nucle-
    ases effi ciently disrupt the target gene in Iberian ribbed newts ( Pleurodeles waltl ), an experi-
    mental model animal for regeneration. Dev Growth Differ 56:115–121. doi: 10.1111/
    dgd.12103

  10. Flowers GP, Timberlake AT, McLean KC et al (2014) Highly effi cient targeted mutagenesis in
    axolotl using Cas9 RNA-guided nuclease. Development 141:2165–2171. doi: 10.1242/dev.105072

  11. Khattak S, Murawala P, Andreas H et al (2014) Optimized axolotl ( Ambystoma mexicanum )
    husbandry, breeding, metamorphosis, transgenesis and tamoxifen- mediated recombination.
    Nat Protoc 9:529–540. doi: 10.1038/nprot.2014.040

  12. Schnapp E, Tamaka EM (2004) Quantitative evaluation of morpholino-mediated protein
    knockdown of GFP, MSX1, and PAX7 during tail regeneration in Ambystoma mexicanum.
    Dev Dyn 232:162–170. doi: 10.1002/dvdy.20203

  13. Lam NT, Currie PD, Lieschke GJ et al (2012) Nerve growth factor stimulates cardiac regen-
    eration via cardiomyocyte proliferation in experimental heart failure. PLoS One 7, e53210.
    doi: 10.1371/journal.pone.0053210

  14. Mahmoud AI, O’Meara CC, Gemberling M et al (2015) Nerves regulate cardiomyocyte pro-
    liferation and heart regeneration. Dev Cell 34:387–399. doi: 10.1016/j.devcel.2015.06.017

  15. Takeo M, Chou WC, Sun Q et al (2013) Wnt activation in nail epithelium couples nail growth
    to digit regeneration. Nature 499:228–232. doi: 10.1038/nature12214

  16. Buckley G, Wong J, Metcalfe AD, Ferguson MWJ (2012) Denervation affects regenerative
    responses in MRL/MpJ and repair in C57BL/6 ear wounds. J Anat 220:3–12. doi: 10.1111/j.1469-
    7580.2011.01452.x

  17. Yamazaki S, Ema H, Karlsson G et al (2011) Nonmyelinating schwann cells maintain hema-
    topoietic stem cell hibernation in the bone marrow niche. Cell 147:1146–1158. doi: 10.1016/j.
    cell.2011.09.053

  18. Brownell I, Guevara E, Bai CB et al (2011) Nerve-derived sonic hedgehog defi nes a niche for
    hair follicle stem cells capable of becoming epidermal stem cells. Cell Stem Cell 8:552–565.
    doi: 10.1016/j.stem.2011.02.021

  19. Mescher AL, Neff AW, King MW (2013) Changes in the infl ammatory response to injury and
    its resolution during the loss of regenerative capacity in developing Xenopus limbs. PLoS
    One 8, e80477. doi: 10.1371/journal.pone.0080477.t002

  20. Love NR, Chen Y, Ishibashi S et al (2013) Amputation-induced reactive oxygen species are
    required for successful Xenopus tadpole tail regeneration. Nat Cell Biol 15:222–228.
    doi: 10.1038/ncb2659


R.J. Debuque and J.W. Godwin

http://www.ebook3000.com
Free download pdf