Holdfast fragmentation of Macrocystis pyrifera (integrifolia morph) and Lessonia berteroana in Atacama (Chile): a novel approach for kelp bed restoration

被引:0
作者
Renato Westermeier
Pedro Murúa
David J. Patiño
Liliana Muñoz
Dieter G. Müller
机构
[1] Universidad Austral de Chile,Instituto de Acuicultura
[2] University of Aberdeen,Oceanlab, School of Biological Sciences
[3] Fachbereich Biologie der Universität Konstanz,undefined
来源
Journal of Applied Phycology | 2016年 / 28卷
关键词
Kelp bed repopulation; Holdfast fragments; morph; Phaeophyta; Chile;
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学科分类号
摘要
The kelps Macrocystis pyrifera (integrifolia morph) and Lessonia berteroana (northern lineage of Lessonia nigrescens) are intensely harvested in Atacama, northern Chile, for abalone forage and alginate production. Local situations call for simple restoration techniques for over-exploited kelp beds. We excised holdfast portions from parental specimens, including parts of stipes and phylloids. Untreated adult thalli and unmanipulated specimens served as controls. Fragments of both species were attached to boulders or rock platforms with elastic bands or cyanoacrylate glue. Transplanted fragments quickly formed new haptera, colonized new substrata, and reached reproductive maturity. Macrocystis regenerates increased in total length and holdfast diameter in one or both directions of the rhizome, forming a pair of stipes, followed by rhizome and haptera development. In Lessonia, tissue of non-injured zones took over new holdfast growth. Success of this propagation method varied with season and substrata. Both species proceeded to complete regeneration of holdfasts. However, holdfasts of older Macrocystis thalli partly decomposed, resulting in two apparently identical individuals. Advantages of these propagation methods are discussed in ecological and restoration contexts.
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页码:2969 / 2977
页数:8
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共 93 条
  • [1] Andrade S(2006)Kinetics of copper accumulation in Aquat Toxicol 78 398-401
  • [2] Contreras L(2005) (Phaeophyceae) under conditions of environmental oxidative stress Mar Ecol Prog Ser 302 49-61
  • [3] Moffett JM(1983)Restoration of the bull kelp Mar Pollut Bull 14 459-464
  • [4] Correa JA(2007) in nearshore rocky habitats Environ Pollut 145 75-83
  • [5] Carney L(2006)Environmental impact in sandy beaches of copper mine tailings at Chañaral, Chile J Exp Mar Biol Ecol 335 13-18
  • [6] Waaland JR(1996)Effects of copper on early developmental stages of Oecologia 105 361-368
  • [7] Klinger T(2002) Bory (Phaeophyceae) ICES J Mar Sci 59 S201-S207
  • [8] Ewing K(2005)Experimental transplants of the large kelp Mar Ecol Prog Ser 288 129-140
  • [9] Castilla JC(2012) (Phaeophyceae) in high-energy wave exposed rocky intertidal habitats of northern Chile: experimental, restoration and management applications J Phycol 48 1153-1165
  • [10] Contreras L(2007)Within-plant variation in seaweed palatability and chemical defenses: optimal defense theory versus the growth-differentiation balance hypothesis Oceanogr Mar Biol 45 39-88