Research articles

Evaluation of Cold Resistance of 9 Clones of Acacia mangium × A. auriculiformis

  • 廖仿炎,陈泊臻,王力涵,王雨欣,李 娜,朱报著,张卫华
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  • (1. Guangdong Forestry Affairs Center, Guangzhou 510173, Guangdong China; 2. Guangdong Academy of Forestry, Guangzhou 510520, Guangdong China; 3. College of Forestry, Hebei Agricultural University, Baoding 071001, Hebei China; 4. College of Forestry, Northeast Forestry University, Harbin 150040, Heilongjiang China)

Received date: 2024-09-06

  Accepted date: 2024-12-17

  Online published: 2025-05-22

Abstract

The seedlings of 9 clones of Acacia mangium × A. auriculiformis  were used as experimental materials, and the cold environment was simulated by a large low-temperature artificial climate chamber. Physiological indexes such as relative electrical conductivity (REC), soluble protein (SP), free proline (Pro) and malondialdehyde (MDA) were determined, and the response of physiological indexes, cold resistance were analyzed under low temperature conditions, and the cold resistance of 9 clones of A. mangium × A. auriculiformis were evaluated by membership function method comprehensively. Results showed that the relative electrical conductivity and soluble protein content of leaves of different clones increased gradually, the free proline content and SOD activity increased first and then decreased, and the MDA content increased first and then decreased and then increased under low temperature stress. According to the average membership function value, the rank of the cold resistance of 9 clones of A. mangium×A. auriculiformis is No. 8 > No. 7 > No. 6 > No. 2 > No. 1 > No. 9 > No. 3 > No. 4 > No. 5. The No. 8 has the strongest cold resistance, and it can be used as a high quality cold resistance material for hybrid breeding and cultivation.

Cite this article

廖仿炎,陈泊臻,王力涵,王雨欣,李 娜,朱报著,张卫华 . Evaluation of Cold Resistance of 9 Clones of Acacia mangium × A. auriculiformis[J]. Subtropical Plant Science, 2025 , 54(1) : 45 -53 . DOI: 10.3969/j.issn.1009-7791.2025.01.006

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