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Bonekamp NA, Völkl A, Fahimi HD, Schrader M (2009). "Reactive oxygen species and peroxisomes: struggling for balance". BioFactors. 35 (4): 346–55. doi:10.1002/biof.48. PMID19459143. S2CID7502822.
del Río LA, Sandalio LM, Palma JM, Bueno P, Corpas FJ (November 1992). "Metabolism of oxygen radicals in peroxisomes and cellular implications". Free Radical Biology & Medicine. 13 (5): 557–80. doi:10.1016/0891-5849(92)90150-F. PMID1334030.
Corpas FJ, Barroso JB, del Río LA (April 2001). "Peroxisomes as a source of reactive oxygen species and nitric oxide signal molecules in plant cells". Trends in Plant Science. 6 (4): 145–50. doi:10.1016/S1360-1385(01)01898-2. PMID11286918.
Fagarasanu A, Fagarasanu M, Rachubinski RA (2007). "Maintaining peroxisome populations: a story of division and inheritance". Annual Review of Cell and Developmental Biology. 23: 321–44. doi:10.1146/annurev.cellbio.23.090506.123456. PMID17506702.
Duhita N, Le HA, Satoshi S, Kazuo H, Daisuke M, Takao S (January 2010). "The origin of peroxisomes: The possibility of an actinobacterial symbiosis". Gene. 450 (1–2): 18–24. doi:10.1016/j.gene.2009.09.014. PMID19818387.
Gabaldón T, Capella-Gutiérrez S (October 2010). "Lack of phylogenetic support for a supposed actinobacterial origin of peroxisomes". Gene. 465 (1–2): 61–5. doi:10.1016/j.gene.2010.06.004. PMID20600706.
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Bonekamp NA, Völkl A, Fahimi HD, Schrader M (2009). "Reactive oxygen species and peroxisomes: struggling for balance". BioFactors. 35 (4): 346–55. doi:10.1002/biof.48. PMID19459143. S2CID7502822.