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(American Journal of Botany. 2002;89:12-21.)
© 2002 Botanical Society of America, Inc.


Biomechanics

The biomechanics of Pachycereus pringlei root systems1

Karl J. Niklas2,4, Francisco Molina-Freaner3, Clara Tinoco-Ojanguren3 and Dominick J. Paolillo Jr2

2Department of Plant Biology, Cornell University, Ithaca, New York 14853-5908 USA; and 3Instituto de Ecologia UNAM, Apartado Postal 1354, Hermosillo, Sonora CP83000, México

We report on the root system of the large columnar cactus species Pachycereus pringlei to explore the hypothesis that increasing plant size decreases the ability to resist wind-throw but increases the capacity to absorb and store nutrients in roots (i.e., plant size limits the performance of these functions and may shift the performance of one function in favor of another as size increases). Based on 18 plants differing in size, the root system is characterized by a broad and deep bayonet-like root central to a shallow and extensive lateral system of root elements bearing sinker roots near the stem base. All root types have a living secondary cortex and contain wood with a large volume fraction of ray tissues that increases toward the stem base. Wood stiffness and tensile strength are correlated negatively with the ray tissue volume fraction and thus decrease toward the stem base in lateral and bayonet roots. Calculations show that the ability of the bayonet and proximal lateral root elements to resist wind-throw decreases with increasing plant size, whereas the nutrient absorption/storage capacity of the total root system increases with plant size (i.e., a size-dependent shift between these two root functions occurs).

Key Words: biomechanics • Cactaceae • plant anatomy • roots • wind drag • wood


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