Page 14 - 《广西植物》2023年第11期
P. 14
1 9 7 4 广 西 植 物 43 卷
KOCH MSꎬ SCHOPMEYER SAꎬ KYHN ̄HANSEN Cꎬ et al.ꎬ metabolites in Medicago sativa leaf under different damage
2007. Tropical seagrass species tolerance to hypersalinity degrees of pea aphid ( Acyrthosiphon pisumꎬ Hemiptera:
stress [J]. Aquat Botꎬ 86(1): 14-24. Aphididae) [J]. Chin J Ecol ̄Agricꎬ 27(1): 92- 99. [孙
LIN ZFꎬ LI SSꎬ LIN GZꎬ et al.ꎬ 1984. Superoxide dismutase 倩ꎬ 张廷伟ꎬ 魏君玉ꎬ 等ꎬ 2019. CO 浓度升高条件下不同
2
activity and lipid peroxidation in relation to senescence of 程度豌豆蚜危害对紫花苜蓿叶片营养物质和次生代谢物
rice leaves [J]. Chin Bull Botꎬ 26(6): 605-615. [林植芳ꎬ 质的影响 [J]. 中国生态农业学报ꎬ 27(1): 92-99.]
李双顺ꎬ 林桂株ꎬ 等ꎬ 1984. 水稻叶片的衰老与超氧化物 SUYKERBUYK Wꎬ GOVERS LLꎬ OVEN Wꎬ et al.ꎬ 2018.
歧化酶活性及脂质过氧化作用的关系 [J]. 植物学报ꎬ Living in the intertidal: desiccation and shading reduce
26(6): 605-615.] seagrass growthꎬ but high salinity or population of origin have
LIU HLꎬ LI XMꎬ NAN GNꎬ et al.ꎬ 2014. Photosynthetic no additional effect [J]. PeerJꎬ 6(1): e5234.
activity of Gloiopeltis furcata ( intertidal red macroalga) in TOUCHETTE BWꎬ 2007. Seagrass ̄salinity interactions:
response to desiccation [ J]. Chin J Appl Ecolꎬ 25(5): physiological mechanisms used by submersed marine
1491-1498. [刘洪亮ꎬ 李雪萌ꎬ 南国宁ꎬ 等ꎬ 2014. 潮间带 angiosperms for a life at sea [ J]. J Exp Mar Biol Ecolꎬ
红藻———海萝光合活性对干露胁迫的响应 [J]. 应用生 350(1/ 2): 194-215.
态学报ꎬ 25(5): 1491-1498.] TREVATHAN ̄TACKETT SMꎬ LANE ALꎬ BISHOP Nꎬ et al.ꎬ
MALEA Pꎬ CHARITONIDOU Kꎬ SPERDOULI Iꎬ et al.ꎬ 2015. Metabolites derived from the tropical seagrass Thalassia
2019. Zinc uptakeꎬ photosynthetic efficiency and oxidative testudinum are bioactive against pathogenic Labyrinthula
stress in the seagrass Cymodocea nodosa exposed to ZnO sp. [J]. Aquat Botꎬ 122(1): 1-8.
nanoparticles [J]. Materialsꎬ 12(13): 2101. UNSWORTH RKFꎬ CULLEN LCꎬ 2010. Recognising the
MANASSA RPꎬ SMITH TMꎬ BEARDALL Jꎬ et al.ꎬ 2017. necessity for Indo ̄Pacific seagrass conservation [J]. Conserv
Capacity of a temperate intertidal seagrass species to tolerate Lettꎬ 3(2): 63-73.
changing environmental conditions: Significance of light and UNSWORTH RKFꎬ RASHEED MAꎬ CHARTRAND KMꎬ et
tidal exposure [J]. Ecol Indicꎬ 81(10): 578-586. al.ꎬ 2012. Solar radiation and tidal exposure as environmental
PAPATHANASIOU Vꎬ KARIOFILLIDOU Gꎬ MALEA Pꎬ et drivers of Enhalus acoroides dominated seagrass meadows
al.ꎬ 2020. Effects of air exposure on desiccation and [J]. PLoS ONEꎬ 7(3): e34133.
photosynthetic performance of Cymodocea nodosa with and WAYCOTT Mꎬ DUARTE CMꎬ CARRUTHERS TJBꎬ et al.ꎬ
without epiphytes and ulva rigida in comparisonꎬ under 2009. Accelerating loss of seagrasses across the globe
laboratory conditions [J]. Mar Environ Resꎬ 158: 104948. threatens coastal ecosystems [ J]. Proc Natl Acad Sciꎬ
RAKHMAD Pꎬ HARIYANTO Sꎬ SRI Yꎬ et al.ꎬ 2019. Gene 106(30): 12377-12381.
expression of antioxidant enzymes and heat shock proteins in WEI ALꎬ WANG ZMꎬ 2004. Research advances of molecular
tropical seagrass Thalassia hemprichii under heat Stress mechanism of photoinhibition and photodamage mechanism in
[J]. Taiwaniaꎬ 64(2): 117-123. PSⅡ of higher plants [J]. Acta Bot Boreal ̄Occident Sinꎬ
SCHANSKER Gꎬ RENSEN Jꎬ 1999. Performance of active 24(7): 1342-1347. [魏爱丽ꎬ 王志敏ꎬ 2004. 高等植物 PS
photosystem II centers in photoinhibited pea leaves [ J]. 的光抑制与光破坏研究进展 [J]. 西北植物学报ꎬ 24(7):
Photosynth Resꎬ 62(2): 175-184. 1342-1347.]
SEDDON Sꎬ CHESHIREACꎬ 2001. Photosynthetic response of WUTHIRAK Tꎬ KONGNUAL Rꎬ BUAPET Pꎬ 2016.
Amphibolis antarctica and Posidonia australis to temperature Desiccation tolerance and underlying mechanisms for the
and desiccation using chlorophyll fluorescence [J]. Mar Ecol recovery of the photosynthetic efficiency in the tropical
Progrꎬ 220(1): 119-130. intertidal seagrasses Halophila ovalis and Thalassia
SHAFER DJꎬ SHERMAN TDꎬ WYLLIE ̄ECHEVERRIA Sꎬ hemprichii [J]. Bot Marꎬ 59: 0052.
2007. Do desiccation tolerances control the vertical YU Fꎬ CHEN YPꎬ YANG ZJꎬ et al.ꎬ 2014. Effects of low
distribution of intertidal seagrasses? [J]. Aquat Botꎬ 87(2): temperature stress on antioxidant enzymes activities in the
161-166. subcelluar of two Sabina species [J]. Guihaiaꎬ 34(5): 686-
SHU Zꎬ ZHANG XXꎬ CHEN Jꎬ et al.ꎬ 2010. The simplification of 693. [于飞ꎬ 陈银萍ꎬ 杨宗娟ꎬ 等ꎬ 2014. 低温胁迫对两种
chlorophyll content measurement [J]. Acta Phytophysiol Sinꎬ 圆柏属植物亚细胞抗氧化酶活性的影响 [J]. 广西植物ꎬ
46(4): 399-402. [舒展ꎬ 张晓素ꎬ 陈娟ꎬ 等 2010. 叶绿素含 34(5): 686-693.]
量测定的简化 [J]. 植物生理学报ꎬ 46(4): 399-402.] ZHANG JPꎬ HUANG XPꎬ 2009. Application of chlorophyll
STAMP Nꎬ 2003. Out of the quagmire of plant defense fluorescence technique in seagrass ecology research [J]. Mar
hypotheses [J]. Quart Rev Biolꎬ 78(1): 23-55. Environ Sciꎬ 28(6): 772-777. [张景平ꎬ 黄小平ꎬ 2009. 叶
STAPEL Jꎬ MANUNTUN Rꎬ HEMMINGA MAꎬ 1997. 绿素荧光技术在海草生态学研究中的应用 [J]. 海洋环
Biomass loss and nutrient redistribution in an Indonesian 境科学ꎬ 28(6): 772-777.]
Thalassia hemprichii seagrass bed following seasonal low tide ZIEMAN ELꎬ 1974. Methods for the study of the growth and
exposure during daylight [ J ]. Mar Ecol Prog Serꎬ production of turtle grassꎬ Thalassia testudinum Konig
148(1/ 2/ 3): 251-262. [J]. Aquacultureꎬ 4(74): 139-143.
SUN Qꎬ ZHANG TWꎬ WEI JYꎬ et al.ꎬ 2019. Effects of
elevated CO concentration on nutrients and secondary (责任编辑 蒋巧媛)
2