Related Experiment Video
Updated: Aug 8, 2026

Intra-cardiac Side-Firing Light Catheter for Monitoring Cellular Metabolism using Transmural Absorbance Spectroscopy of Perfused Mammalian Hearts
Published on: May 12, 2019
Cyanide-resistant Respiration in Fresh and Aged Sweet Potato Slices
1Department of Biology and Molecular Biology Institute, University of California, Los Angeles, California 90024.
Abstract:
The respiration of fresh sweet potato (Ipomoea batatas) slices is resistant to, and often stimulated by, cyanide and antimycin A. m-Chlorobenzhydroxamic acid (CLAM), a selective inhibitor of the alternate path, inhibits respiration in the presence of cyanide and has a limited inhibitory effect in the presence of antimycin A. Thus, a partial bypass of the antimycinsensitive site is indicated. Respiration rises 2-fold at best with slice aging, the increment being cytochrome-mediated. The cyanide-resistant pathway contributes neither to coupled fresh slice respiration nor to the induced respiration in the absence of inhibitors of the cytochrome path. In the presence of uncoupler, however, the alternate path is engaged both in fresh and aged slices. V(cyt), the maximal capacity of the cytochrome path, remains essentially the same with slice aging, whereas V(alt) decreases from 20 to 60 per cent. The induced respiration is readily accommodated by the potential cytochrome path capacity of fresh slices, which is realized on aging. Accordingly, there is no need to invoke mitochondrial proliferation in explanation of the development of the induced respiration. The engagement of the alternate path in response to uncoupler reflects substrate mobilization to a degree that substrate oxidation exceeds the electron transport capacity of the cytochrome path.Fresh slices do not utilize exogenous substrates, whereas aged slices do so readily. Cerulenin, a specific inhibitor of fatty acid synthesis, prevents the development of the induced respiration as well as the capacity to oxidize exogenous substrates. It is suggested that lipid, and ultimately membrane, biosynthesis is central to the development of the induced respiration and the ability to use exogenous substrates, much as in potato.
Insights
Sweet potato respiration involves a cyanide-resistant pathway, distinct from the main cytochrome path. Aging enhances respiration, but this is not due to new mitochondria, suggesting lipid biosynthesis is key.
Area of Science:
- Plant Physiology
- Mitochondrial Respiration
- Biochemistry
Background:
- Sweet potato (Ipomoea batatas) respiration exhibits complex regulation.
- Cyanide resistance suggests the presence of alternative respiratory pathways.
- Understanding these pathways is crucial for plant metabolic studies.
Purpose of the Study:
- To elucidate the role of the cyanide-resistant pathway in sweet potato respiration.
- To investigate the impact of slice aging on respiratory capacity and pathway engagement.
- To determine the relationship between lipid biosynthesis and induced respiration.
Main Methods:
- Respiration measurements using inhibitors like cyanide, antimycin A, and m-chlorobenzhydroxamic acid (CLAM).
- Assessment of cytochrome and alternative pathway capacities (V(cyt) and V(alt)) in fresh and aged slices.
- Investigation of exogenous substrate utilization and the effect of cerulenin, a fatty acid synthesis inhibitor.
Main Results:
- Sweet potato respiration is partially resistant to cyanide and antimycin A, indicating an alternative pathway.
- Slice aging increases respiration, mediated by the cytochrome path, without mitochondrial proliferation.
- The alternative path is engaged under uncoupling conditions, and its capacity decreases with aging; lipid synthesis inhibition prevents induced respiration and exogenous substrate use.
Conclusions:
- The cyanide-resistant pathway in sweet potato does not contribute to basal or induced respiration under normal conditions.
- Aging-induced respiration is supported by existing cytochrome path capacity, not new mitochondria.
- Lipid and membrane biosynthesis are central to the development of induced respiration and exogenous substrate utilization in sweet potato.
