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Trunk distortion weakens the tree productivity revealed by half-sib progeny determination of Pinus yunnanensis. | LitMetric

Trunk distortion weakens the tree productivity revealed by half-sib progeny determination of Pinus yunnanensis.

BMC Plant Biol

State Key Laboratory of Tree Genetics and Breeding, Institute of Highland Forest Science, Chinese Academy of Forestry, Kunming, 650233, PR China.

Published: July 2024

AI Article Synopsis

  • Twisted trunks in trees, particularly in Pinus yunnanensis, can impact growth but are not fully understood; this study focused on families with desirable traits to aid breeding.
  • A progeny test with 93 families (3240 trees) revealed that height variation was mostly within families, while other traits showed significant differences between families, indicating potential for selection.
  • The study found that nearly half of the trees had twisted trunks, greatly affecting growth traits like height and diameter, leading to substantial volume loss, despite efforts in artificial selection to improve trunk shape.

Article Abstract

Twisted trunks are not uncommon in trees, but their effects on tree growth are still unclear. Among coniferous tree species, the phenomenon of trunk distortion is more prominent in Pinus yunnanensis. To expand the germplasm of genetic resources, we selected families with excellent phenotypic traits to provide material for advanced generation breeding. The progeny test containing 93 superior families (3240 trees) was used as the research material. Phenotypic measurements and estimated genetic parameters (family heritability, realistic gain and genetic gain) were performed at 9, 15, and 18 years of age, respectively. The genetic evaluation yielded the following results (1) The intra-family variance component of plant height (PH) was greater than that of the inter-family, while the inter-family variance components of other traits (diameter at breast height (DBH), crown diameter (CD), height under branches (HUB), degree of stem-straightness (DS)) were greater than that of the intra-family, indicating that there was abundant variation among families and potential for selection. (2) At half rotation period (18 years old), there was a significant correlation among the traits. The proportion of trees with twisted trunks (level 1-3 straightness) reached 48%. The DS significantly affected growth traits, among which PH and DBH were the most affected. The volume loss rate caused by twisted trunk was 18.06-56.75%, implying that trunk distortion could not be completely eliminated after an artificial selection. (3) The influence of tree shape, crown width, and trunk on volume increased, and the early-late correlation between PH, DBH and volume was extremely significant. The range of phenotypic coefficient of variation, genetic variation coefficient and family heritability of growth traits (PH, DBH, and volume) were 44.29-127.13%, 22.88-60.87%, and 0.79-0.83, respectively. (4) A total of 21 superior families were selected by the method of membership function combined with independent selection. Compared with the mid-term selection (18 years old), the accuracy of early selection (9 years old) reached 77.5%. The selected families' genetic gain and realistic gain range were 5.79-19.82% and 7.12-24.27%, respectively. This study can provide some useful reference for the breeding of coniferous species.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11221199PMC
http://dx.doi.org/10.1186/s12870-024-05350-8DOI Listing

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