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008 130913s2013 gw s 000 0 eng d
020 _a9783642394263
024 7 _a10.1007/978-3-642-39426-3
_2doi
050 4 _aRB147.5
_b.T73 2013 EB
082 0 4 _a572.6
245 1 0 _aTranslation in Mitochondria and Other Organelles
_cedited by Anne-Marie Duchn̊e
260 _aBerlin, Heidelberg
_bSpringer International Publishing
_c2013
300 _a1 recurso en línea (VI, 265 p.)
_b44 ilustraciones, 36 ilustraciones en color
336 _aTexto (visual)
_btxt
_2rdacontent
337 _aelectrónico
_bc
_2rdamedia
338 _arecurso electrónico
_bcr
_2rdacarrier
505 0 _aStructural aspects of mitochondrial ribosome function -- Mechanism and control of protein synthesis in mammalian mitochondria -- Translation in mammalian mitochondria : Order and disorder linked to tRNA and Aminoacyl-tRNA synthetases -- Mitochondrial targeting of RNA and mitochondrial translation in yeast and mammalians -- Mechanisms and control of protein synthesis in yeast mitochondria -- Mitochondrial translation in trypanosomatids -- Translation in mitochondria and apicoplasts in Apicomplexa -- Translation in mitochondria in green alga and higher plants -- Translation in flowering plant chloroplasts -- The chloroplasts as platform for recombinant proteins production
520 3 _aThe present book gives an overview on the similarities and differences of the various translation systems. Moreover, it highlights the mechanisms and control of translation in mitochondria and other organelles such as plastids and apicoplasts in different organisms. Lastly, it offers an outlook on future developments and applications that might be made possible by a better understanding of translation in mitochondria and other organelles.Â{u0369}tochondria and plastids originate from the endosymbiosis of bacteria. Over the course of evolution, most of the bacterial genes have been lost or transferred to the nuclear genome. Present-day mitochondria and plastids retain only a vestige of the genome of the ancestral bacteria, but the few organellar-encoded protein genes remain essential and must be translated. Organellar translation machineries present clear specificities compared to cytosolic translation machineries, but also from one organism to the other. The organellar translation machineries appear to consist of organellar-encoded and nucleus-encoded components. They rely on crosstalk between genomes and are predominantly controlled by specific mechanisms. Organellar ribosomes show clear differences compared to the ancestral bacterial ribosomes or to the cytosolic ones. Moreover, transfer RNAs and aminoacyl-tRNA synthetases are key components of protein-synthesizing systems, and a full set of both types of macromolecules is required in each compartment where translation occurs. Organellar translations are increasingly becoming a subject of investigation. Translation dysfunctions in human mitochondria are responsible for numerous diseases, and organellar translation systems in some parasites offer potential targets for drug development. Lastly, chloroplasts can be used as platforms for the production of recombinant proteins
942 _2lcc
_cLE
988 _aEBOOK, EBSPRINGERrevisando
650 7 _aMitocondrias
_9147980
_0comprobar BNE19930736376
_2embne
650 7 _aGenética humana
_0comprobar BNE19900986777
_2embne
_9140562
700 1 _aDuchn̊e, Anne-Marie
_0Local
_eeditor literario
_985632
_0Local
856 4 0 _uhttps://go.openathens.net/redirector/universidadeuropea.es?url=https://link.springer.com/book/10.1007/978-3-642-39426-3
_zAcceso a este recurso digital (usuarios Universidad Europea de Madrid)
901 _ai9783642394263
907 _a.b12821287
_b13-10-17
_c01-10-14
998 _am
_a_alco
_a_vill
_b13-10-17
_cm
_dz
_eu
_feng
_ggw
_h0
945 _aRB147.5 .T73 2013 EB
_g1
_ieBOOK
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_lmae
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_z06-04-17
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