浙江农业学报 ›› 2023, Vol. 35 ›› Issue (5): 1088-1096.DOI: 10.3969/j.issn.1004-1524.2023.05.12
冯连荣1(), 张妍1, 赵鑫闻1, 宋立志1, 梁德军2,*(
)
收稿日期:
2022-06-17
出版日期:
2023-05-25
发布日期:
2023-06-01
作者简介:
冯连荣(1983—),女,黑龙江齐齐哈尔人,硕士,正高级工程师,研究方向为杨树育种和林下食用菌栽培。E-mail:fenglianrong@163.com
通讯作者:
*梁德军,Emai:liangdejun70@163.com
基金资助:
FENG Lianrong1(), ZHANG Yan1, ZHAO Xinwen1, SONG Lizhi1, LIANG Dejun2,*(
)
Received:
2022-06-17
Online:
2023-05-25
Published:
2023-06-01
摘要:
为给野生食用菌开发利用提供候选菌种资源,以采自杨树树桩上的野生大型真菌JC423为研究对象,通过形态学鉴定、出菇试验、ITS序列分析和系统发育分析,明确其分离地位。采用单因素试验,研究不同碳源、氮源、无机盐、维生素、pH值和温度对JC423菌丝生长的影响。结果表明,采集的野生食用菌依据子实体形态初步鉴定为金针菇。ITS序列分析获得773 bp目的片段;BLAST序列比对显示,目的片段与Flammulina filiformis strain F007相似性最高,为99.34%;下载部分相似性序列,用MEGA 7.0构建进化树,JC423与序列号为MN337400.1的 F. filiformis strain F007聚为一支,结合形态学特征将JC423鉴定为金针菇。生物学特性结果表明,JC423菌丝生长适宜碳源为果糖,适宜氮源为蛋白胨,适宜pH值范围为9~10,适宜生长温度为25 ℃,无机盐和维生素对菌丝生长影响不大。该研究明确了野生金针菇菌丝生长的营养需求和条件,研究结果可以为金针菇开发利用奠定基础。
中图分类号:
冯连荣, 张妍, 赵鑫闻, 宋立志, 梁德军. 一株野生金针菇菌种的分离、鉴定与生物学特性研究[J]. 浙江农业学报, 2023, 35(5): 1088-1096.
FENG Lianrong, ZHANG Yan, ZHAO Xinwen, SONG Lizhi, LIANG Dejun. Isolation, identification and biological characteristics of a wild Flammulina filiformis strain[J]. Acta Agriculturae Zhejiangensis, 2023, 35(5): 1088-1096.
配方 Formula | 菌丝长满袋时间 Time takes for hyphae to fill the bag/d | 采收期 Harvest period/d | 菇体整齐度 Mushroom uniformity | 平均单袋产量 Average bag yield/g | 袋数 Number of bags | 总产量 Total yield/g | 生物学效率 Biological efficiency/% |
---|---|---|---|---|---|---|---|
1 | 38 | 70 | 整齐Neat | 330.15 aA | 42 | 13 688.5 | 65.18 |
2 | 40 | 70 | 较整齐Relatively neat | 298.00 aAB | 42 | 12 516.0 | 59.60 |
3 | 40 | 68 | 整Neat | 148.44 cC | 42 | 6 232.48 | 29.68 |
4 | 41 | 71 | 较整齐Relatively neat | 230.84 bB | 42 | 9 695.28 | 46.17 |
表1 JC423出菇情况
Table 1 Fruiting of JC423
配方 Formula | 菌丝长满袋时间 Time takes for hyphae to fill the bag/d | 采收期 Harvest period/d | 菇体整齐度 Mushroom uniformity | 平均单袋产量 Average bag yield/g | 袋数 Number of bags | 总产量 Total yield/g | 生物学效率 Biological efficiency/% |
---|---|---|---|---|---|---|---|
1 | 38 | 70 | 整齐Neat | 330.15 aA | 42 | 13 688.5 | 65.18 |
2 | 40 | 70 | 较整齐Relatively neat | 298.00 aAB | 42 | 12 516.0 | 59.60 |
3 | 40 | 68 | 整Neat | 148.44 cC | 42 | 6 232.48 | 29.68 |
4 | 41 | 71 | 较整齐Relatively neat | 230.84 bB | 42 | 9 695.28 | 46.17 |
图4 JC423 ITS序列PCR产物扩增电泳图 M,DL 2000 marker;CK,水对照;1~6,JC423 PCR产物。
Fig.4 PCR amplification electrophoresis of ITS seqence from JC423 M, DL 2000 marker; CK, Water control, 1-6, JC423 PCR products.
处理 Treatment | 菌丝长势 Hyphae growth | 菌丝密度 Hyphael density | 生长速度 Speed of growth | |
---|---|---|---|---|
碳源Carbon source | 果糖Fructose | +++ | 浓密Dense mycelium | 11.52±1.14 aA |
甘露醇 Mannitol | ++ | 稀疏Sparse | 9.41±1.30 bAB | |
可溶性淀粉 Soluble starch | +++ | 浓密Dense mycelium | 7.95±1.66 bcBC | |
蔗糖 Sucrose | ++ | 较密Relatively dense | 7.10±1.30 cdBC | |
葡萄糖 Glucose | ++ | 较密Relatively dense | 6.72±1.75 cdBC | |
对照CK | + | 稀疏Sparse | 5.25±0.33 dC | |
氮源Nitrogen source | 蛋白胨 Peptone | +++ | 浓密Dense mycelium | 12.56±0.31 aA |
酵母膏Ysast extract | ++ | 浓密Dense mycelium | 12.44±0.14 aA | |
硫酸铵Ammonium sumlphate | ++ | 较密Relatively dense | 10.91±1.16 bAB | |
硝酸铵Ammonium nitrate | ++ | 较密Relatively dense | 10.35±1.41 bcB | |
尿素Urea | +++ | 浓密Dense mycelium | 9.00±0.84 cB | |
对照CK | + | 稀疏Sparse | 9.87±1.12 bcB | |
无机盐Inorganic salt | 氯化钠 Sodium chloride | +++ | 浓密Dense mycelium | 12.45±0.26 aA |
硫酸钙 Calcium sulfate | +++ | 浓密Dense mycelium | 12.43±0.85 aA | |
硫酸镁 Magnesium sulfate | +++ | 浓密Dense mycelium | 12.21±0.21 aA | |
磷酸二氢钾Potassium dihydrogen phosphate | +++ | 较密Relatively dense | 11.54±0.57 aA | |
对照CK | +++ | 较密Relatively dense | 11.75±0.58 aA | |
维生素Vitamin | VB3 | +++ | 浓密Dense mycelium | 8.17±1.22 aA |
VB1 | +++ | 浓密Dense mycelium | 8.06±0.66 aA | |
VB12 | +++ | 浓密Dense mycelium | 8.02±0.72 aA | |
VB2 | ++ | 浓密Dense mycelium | 7.64±1.22 aA | |
VB6 | ++ | 较密Relatively dense | 6.95±1.22 aA | |
对照CK | ++ | 较密Relatively dense | 7.43±1.38 aA | |
pH | 4 | +++ | 浓密Dense mycelium | 8.43±0.86 bcBCD |
5 | +++ | 浓密Dense mycelium | 8.96±0.48 abABC | |
6 | ++ | 较密Relatively dense | 8.00±0.72 cdCD | |
7 | ++ | 较密Relatively dense | 7.45±0.38 dDE | |
8 | ++ | 较密Relatively dense | 6.59±0.34 eE | |
9 | +++ | 浓密Dense mycelium | 9.34±0.50 aAB | |
10 | +++ | 浓密Dense mycelium | 9.64±0.22 aA | |
温度Temperature/℃ | 5 | ++ | 稀疏Sparse | 2.32±0.21 eE |
10 | ++ | 较密Relatively dense | 5.66±0.77 cC | |
15 | ++ | 较密Relatively dense | 4.39±0.21 dD | |
20 | +++ | 较密Relatively dense | 9.70±0.44 bB | |
25 | +++ | 浓密Dense mycelium | 11.37±0.09 aA | |
30 | +++ | 较密Relatively dense | 9.70±0.60 bB | |
35 | - | - | 0 fF |
表2 不同条件对金针菇菌丝生长的影响
Table 2 Effects of different conditions on mycelial growth of Flammulina filiformis
处理 Treatment | 菌丝长势 Hyphae growth | 菌丝密度 Hyphael density | 生长速度 Speed of growth | |
---|---|---|---|---|
碳源Carbon source | 果糖Fructose | +++ | 浓密Dense mycelium | 11.52±1.14 aA |
甘露醇 Mannitol | ++ | 稀疏Sparse | 9.41±1.30 bAB | |
可溶性淀粉 Soluble starch | +++ | 浓密Dense mycelium | 7.95±1.66 bcBC | |
蔗糖 Sucrose | ++ | 较密Relatively dense | 7.10±1.30 cdBC | |
葡萄糖 Glucose | ++ | 较密Relatively dense | 6.72±1.75 cdBC | |
对照CK | + | 稀疏Sparse | 5.25±0.33 dC | |
氮源Nitrogen source | 蛋白胨 Peptone | +++ | 浓密Dense mycelium | 12.56±0.31 aA |
酵母膏Ysast extract | ++ | 浓密Dense mycelium | 12.44±0.14 aA | |
硫酸铵Ammonium sumlphate | ++ | 较密Relatively dense | 10.91±1.16 bAB | |
硝酸铵Ammonium nitrate | ++ | 较密Relatively dense | 10.35±1.41 bcB | |
尿素Urea | +++ | 浓密Dense mycelium | 9.00±0.84 cB | |
对照CK | + | 稀疏Sparse | 9.87±1.12 bcB | |
无机盐Inorganic salt | 氯化钠 Sodium chloride | +++ | 浓密Dense mycelium | 12.45±0.26 aA |
硫酸钙 Calcium sulfate | +++ | 浓密Dense mycelium | 12.43±0.85 aA | |
硫酸镁 Magnesium sulfate | +++ | 浓密Dense mycelium | 12.21±0.21 aA | |
磷酸二氢钾Potassium dihydrogen phosphate | +++ | 较密Relatively dense | 11.54±0.57 aA | |
对照CK | +++ | 较密Relatively dense | 11.75±0.58 aA | |
维生素Vitamin | VB3 | +++ | 浓密Dense mycelium | 8.17±1.22 aA |
VB1 | +++ | 浓密Dense mycelium | 8.06±0.66 aA | |
VB12 | +++ | 浓密Dense mycelium | 8.02±0.72 aA | |
VB2 | ++ | 浓密Dense mycelium | 7.64±1.22 aA | |
VB6 | ++ | 较密Relatively dense | 6.95±1.22 aA | |
对照CK | ++ | 较密Relatively dense | 7.43±1.38 aA | |
pH | 4 | +++ | 浓密Dense mycelium | 8.43±0.86 bcBCD |
5 | +++ | 浓密Dense mycelium | 8.96±0.48 abABC | |
6 | ++ | 较密Relatively dense | 8.00±0.72 cdCD | |
7 | ++ | 较密Relatively dense | 7.45±0.38 dDE | |
8 | ++ | 较密Relatively dense | 6.59±0.34 eE | |
9 | +++ | 浓密Dense mycelium | 9.34±0.50 aAB | |
10 | +++ | 浓密Dense mycelium | 9.64±0.22 aA | |
温度Temperature/℃ | 5 | ++ | 稀疏Sparse | 2.32±0.21 eE |
10 | ++ | 较密Relatively dense | 5.66±0.77 cC | |
15 | ++ | 较密Relatively dense | 4.39±0.21 dD | |
20 | +++ | 较密Relatively dense | 9.70±0.44 bB | |
25 | +++ | 浓密Dense mycelium | 11.37±0.09 aA | |
30 | +++ | 较密Relatively dense | 9.70±0.60 bB | |
35 | - | - | 0 fF |
[1] | 刘昆昂, 刘萌, 张根伟, 等. 金针菇遗传育种研究进展[J]. 江苏农业科学, 2019, 47(14): 18-22. |
LIU K A, LIU M, ZHANG G W, et al. Research progress on genetic breeding of Flammulina velutipes[J]. Jiangsu Agricultural Sciences, 2019, 47(14): 18-22. (in Chinese) | |
[2] | 任传军. 蘑菇·202种蘑菇彩色图谱识别应用[M]. 北京: 化学工业出版社, 2014. |
[3] | 杨万波, 兰士波, 温爱亭, 等. 金针菇的研究进展及开发利用前景[J]. 安徽林业科技, 2013, 39(1): 41-43. |
YANG W B, LAN S B, WEN A T, et al. Research progress and development prospects of Flammulina velutipes[J]. Anhui Forestry Science and Technology, 2013, 39(1): 41-43. (in Chinese with English abstract) | |
[4] | 付英宾, 崔文甲, 王文亮, 等. 金针菇营养成分及产品开发研究进展[J]. 食品科技, 2021, 46(6): 73-77. |
FU Y B, CUI W J, WANG W L, et al. Research progress on nutrient composition and product development of Flammulina velutipes[J]. Food Science and Technology, 2021, 46(6): 73-77. (in Chinese with English abstract) | |
[5] | 王翠翠, 崔成伟, 陈屏, 等. 金针菇化学成分及药理活性研究进展[J]. 菌物研究, 2021, 19(3): 207-216. |
WANG C C, CUI C W, CHEN P, et al. Research progress on chemical constituents and pharmacological activities of Flammulina velutipes[J]. Journal of Fungal Research, 2021, 19(3): 207-216. (in Chinese) | |
[6] | 高士友, 陈华早, 李勇. 毛柄金钱菌优质高产栽培技术的研究[J]. 陕西农业科学, 2008, 54(3): 8-10. |
GAO S Y, CHEN H Z, LI Y. Study on cultivation techniques of high quality and high yield of Chrysomyces pubescens[J]. Shaanxi Journal of Agricultural Sciences, 2008, 54(3): 8-10. (in Chinese) | |
[7] | 苗人云, 周洁, 谭伟, 等. 金针菇栽培基质替代原料初步筛选研究[J]. 菌物学报, 2014, 33(2): 411-424. |
MIAO R Y, ZHOU J, TAN W, et al. A preliminary screening of alternative substrate for cultivation of Flammulina velutipes[J]. Mycosystema, 2014, 33(2): 411-424. (in Chinese with English abstract) | |
[8] |
金群力, 范丽军, 冯伟林, 等. 不同栽培原料配方及装瓶容重对金针菇生长发育的影响[J]. 浙江农业学报, 2016, 28(11): 1874-1880.
DOI |
JIN Q L, FAN L J, FENG W L, et al. Effect of substrate formula with different raw materials and bottling bulk density on growth and development of Flammulina velutipes[J]. Acta Agriculturae Zhejiangensis, 2016, 28(11): 1874-1880. (in Chinese with English abstract) | |
[9] | 王雷, 刘晖, 窦宏强, 等. 10个白色金针菇菌株工厂化栽培试验[J]. 食药用菌, 2021, 29(5): 421-423. |
WANG L, LIU H, DOU H Q, et al. Industrial cultivation experiment of 10 white Flammulina velutipes strains[J]. Edible and Medicinal Mushrooms, 2021, 29(5): 421-423. (in Chinese) | |
[10] | 黄春燕, 李瑾, 杨彤, 等. 37个黄色金针菇菌株工厂化栽培比较[J]. 食用菌, 2020, 42(3): 19-23. |
HUANG C Y, LI J, YANG T, et al. Comparison of industrial cultivation of 37 yellow Flammulina velutipes strains[J]. Edible Fungi, 2020, 42(3): 19-23. (in Chinese) | |
[11] | 黄春燕, 杨彤, 张元祺, 等. 64个金针菇菌株工厂化栽培比较[J]. 食用菌, 2019, 41(5): 27-30. |
HUANG C Y, YANG T, ZHANG Y Q, et al. Comparison of industrialized cultivation of 64 Flammulina velutipes strains[J]. Edible Fungi, 2019, 41(5): 27-30. (in Chinese) | |
[12] | 刘传会. 玉米芯工厂化栽培金针菇配方及单瓶装料量优化[J]. 湖北农业科学, 2012, 51(10): 1985-1986. |
LIU C H. Optimization of the formula and filling rate in bottle in the industrial cultivation of Flammulina velutipes with corncob[J]. Hubei Agricultural Sciences, 2012, 51(10): 1985-1986. (in Chinese with English abstract) | |
[13] | 解生权, 全艳玲, 王菲. 金针菇UV诱变育种研究[J]. 中国酿造, 2011, 30(3): 143-144. |
XIE S Q, QUAN Y L, WANG F. Study on ultraviolet mutagenesis of Flammulina velutipes[J]. China Brewing, 2011, 30(3): 143-144. (in Chinese with English abstract) | |
[14] | 江玉姬, 赵书光, 谢宝贵, 等. 金针菇杂交育种中亲本菌株的选择模式[J]. 福建农林大学学报(自然科学版), 2010, 39(4): 403-408. |
JIANG Y J, ZHAO S G, XIE B G, et al. Model of selecting parent strains for Flammulina velutipes hybridization breeding[J]. Journal of Fujian Agriculture and Forestry University(Natural Science Edition), 2010, 39(4): 403-408. (in Chinese with English abstract) | |
[15] | 杨茹, 王范, 董鼎才, 等. 利用ARTP诱变育种技术选育白色金针菇突变菌株[J]. 青岛农业大学学报(自然科学版), 2017, 34(4): 249-255. |
YANG R, WANG F, DONG D C, et al. Screening novel white Flammulina velutipes strains by atmospheric and room temperature plasma[J]. Journal of Qingdao Agricultural University(Natural Science), 2017, 34(4): 249-255. (in Chinese with English abstract) | |
[16] | 赵瑞华, 贺晓龙, 刘月芹. 金针菇燕麦饼干的加工工艺及品质分析[J]. 粮食与油脂, 2021, 34(10): 59-63. |
ZHAO R H, HE X L, LIU Y Q. Processing technology and quality analysis of Flammulina velutipes oats biscuits[J]. Cereals & Oils, 2021, 34(10): 59-63. (in Chinese with English abstract) | |
[17] | 杨晓虹, 郭丽红. 果味金针菇果冻的工艺研究[J]. 昆明师范高等专科学校学报, 2003, 25(4): 55-57. |
YANG X H, GUO L H. The manufacturing procedure of Flammulina velutipes jelly with fruit flavour[J]. Journal of Kunming Teachers College, 2003, 25(4): 55-57. (in Chinese with English abstract) | |
[18] | 靳羽慧. 金针菇对面条品质特性的影响[D]. 新乡: 河南科技学院, 2018. |
JIN Y H. Effect of Flammulina velutipes on quality characteristics of noodles[D]. Xinxiang: Henan Institute of Science and Technology, 2018. (in Chinese with English abstract) | |
[19] | 刘景煜. 金针菇生物活性成分分离及开发利用[D]. 杨凌: 西北农林科技大学, 2017. |
LIU J Y. Separation and development of bioactive components from Flammulina velutipes[D]. Yangling: Northwest A & F University, 2017. (in Chinese with English abstract) | |
[20] | 郗恩光, 谭海生, 杨劲松, 等. 响应面法优化益生菌发酵香蕉金针菇饮料的工艺研究[J]. 中国酿造, 2018, 37(9): 185-190. |
XI E G, TAN H S, YANG J S, et al. Technology optimization of probiotic fermented banana and Flammulina velutipes beverage by response surface methodology[J]. China Brewing, 2018, 37(9): 185-190. (in Chinese with English abstract) | |
[21] | 于淑艳, 吴琼, 张莉弘, 等. 金针菇多糖提取工艺的优化及复合饮料的研制[J]. 食品研究与开发, 2013, 34(20): 46-48. |
YU S Y, WU Q, ZHANG L H, et al. Extraction of Flammulina polysaccharide and preparation compound beverage[J]. Food Research and Development, 2013, 34(20): 46-48. (in Chinese with English abstract) | |
[22] | 李魁, 王梅玉, 程彦伟, 等. 富锌金针菇健身饮料的研究[J]. 食品工业, 2003, 24(4): 40-42. |
LI K, WANG M Y, CHENG Y W, et al. Study on zinc-rich Flammulina velutipes health drink[J]. The Food Industry, 2003, 24(4): 40-42. (in Chinese) | |
[23] |
陈润臣, 王艺凝, 刘潇文, 等. 一株野生多脂鳞伞的鉴定、人工栽培与营养成分分析[J]. 浙江农业学报, 2021, 33(12): 2330-2338.
DOI |
CHEN R C, WANG Y N, LIU X W, et al. Identification, artificial cultivation and nutritional analysis of wild Pholiota adiposa[J]. Acta Agriculturae Zhejiangensis, 2021, 33(12): 2330-2338. (in Chinese with English abstract) | |
[24] | 宋立志, 冯连荣, 梁德军, 等. 一株野生大型真菌的菌种分离及ITS序列鉴定[J]. 安徽农业科学, 2018, 46(14): 113-115. |
SONG L Z, FENG L R, LIANG D J, et al. Isolation and identification of ITS sequences of a wild macrofungi[J]. Journal of Anhui Agricultural Sciences, 2018, 46(14): 113-115. (in Chinese with English abstract) | |
[25] | 肖波, 范宇光. 常见蘑菇野外识别手册[M]. 重庆: 重庆大学出版社, 2010. |
[26] |
冯连荣, 王占斌, 矫丽曼, 等. 一株虫生真菌的分离、进化关系分析及致病性测定[J]. 中国农学通报, 2019, 35(7): 77-82.
DOI |
FENG L R, WANG Z B, JIAO L M, et al. An entomogenous fungus: isolation, evolutionary relationship analysis and pathogenicity determination[J]. Chinese Agricultural Science Bulletin, 2019, 35(7): 77-82. (in Chinese with English abstract)
DOI |
|
[27] | 刘启燕, 戚俊, 王卓仁, 等. 我国金针菇工厂化生产现状与思考[J]. 中国食用菌, 2021, 40(12): 83-88, 92. |
LIU Q Y, QI J, WANG Z R, et al. Current situation and thinking of Flammulina filiformis in industrialized production in China[J]. Edible Fungi of China, 2021, 40(12): 83-88, 92. (in Chinese with English abstract) | |
[28] | 李勇, 厉芳, 樊继德, 等. 我国金针菇工厂化生产的现状、存在问题及对策[J]. 食药用菌, 2021, 29(2): 96-100. |
LI Y, LI F, FAN J D, et al. Present situation, existing problems and countermeasures of industrialized production of Flammulina velutipes in China[J]. Edible and Medicinal Mushrooms, 2021, 29(2): 96-100. (in Chinese) | |
[29] | 何俊, 罗宗龙, 邓瑞民, 等. 野生柳生金针菇和金针菇的分离、生物学特性及驯化栽培[J]. 菌物学报, 2022, 41(4): 630-646. |
HE J, LUO Z L, DENG R M, et al. Isolation, biological characteristics and domestication of wild Flammulina rossica and F. filiformis[J]. Mycosystema, 2022, 41(4): 630-646. (in Chinese with English abstract) | |
[30] | GE Z W, LIU X B, ZHAO K, et al. Species diversity of Flammulina in China: new varieties and a new record[J]. Mycosystema, 2015, 34(4): 589-603. |
[31] |
WANG P M, LIU X B, DAI Y C, et al. Phylogeny and species delimitation of Flammulina: taxonomic status of winter mushroom in East Asia and a new European species identified using an integrated approach[J]. Mycological Progress, 2018, 17(9): 1013-1030.
DOI |
[32] | 杨云静. 金针菇“江山一号”营养要素筛选及其液体菌种培养研究[D]. 福州: 福建农林大学, 2017. |
YANG Y J. Study on screening of nutritional elements and liquid culture of Flammulina velutipes “Jiangshan No.1”[D]. Fuzhou: Fujian Agriculture and Forestry University, 2017. (in Chinese with English abstract) | |
[33] | 王德昌. 金针菇固体培养碳氮源初步研究[J]. 中国食用菌, 2000, 19(5): 38-39. |
WANG D C. Preliminary study on carbon and nitrogen sources of Flammulina velutipes solid culture[J]. Edible Fungi of China, 2000, 19(5): 38-39. (in Chinese) | |
[34] | 李良, 徐小君. 金针菇白色菌株F21的生物学特性研究[J]. 食用菌, 1994, 16(1): 5-6. |
LI L, XU X J. Study on biological characteristics of Flammulina velutipes white strain F21[J]. Edible Fungi, 1994, 16(1): 5-6. (in Chinese) |
[1] | 孙珊珊, 其美拉姆, 李强, 曾南方, 郑诚, 张白玉, 颜其贵. 表达PRRSV NADC30-like毒株GP5-M的重组伪狂犬病病毒的构建及其生物学特性探究[J]. 浙江农业学报, 2023, 35(11): 2555-2567. |
[2] | 王志鹏, 赵剑, 黄盼, 崔雪梅, 南黎, 宋厚辉, 鲍国连, 刘燕. 兔源大肠埃希菌噬菌体分离鉴定与生物学特性研究[J]. 浙江农业学报, 2022, 34(8): 1599-1608. |
[3] | 杨玲, 沙楠景, 潘鹏举, 吴伯志. 云南地区铁线莲叶枯病病原菌的鉴定和主要生物学特性[J]. 浙江农业学报, 2022, 34(7): 1449-1456. |
[4] | 许建军, 马燕, 吴其超, 王宝盛, 臧德奎. 野生玫瑰多态性cpDNA和ITS引物的筛选与验证[J]. 浙江农业学报, 2022, 34(5): 1032-1038. |
[5] | 陈润臣, 王艺凝, 刘潇文, 王红艳, 丁强, 王鸿磊. 一株野生多脂鳞伞的鉴定、人工栽培与营养成分分析[J]. 浙江农业学报, 2021, 33(12): 2330-2338. |
[6] | 李戌清, 严建立, 阮松林. 三叶青炭疽病病原菌的鉴定与生物学特性[J]. 浙江农业学报, 2020, 32(11): 2009-2019. |
[7] | 李戌清, 张敬泽, 张雅, 吴根良. 浙江省绍兴市茄子黄萎病菌菌株致病型鉴定及其生物学特性研究[J]. 浙江农业学报, 2019, 31(5): 784-789. |
[8] | 周会明, 张焱珍, 柴红梅, 杨荣情, 谭莹, 张萍萍, 白玉英, 赵一莲, 金玉洁. 一株临沧野生黄鸡?的鉴定与生长条件研究[J]. 浙江农业学报, 2019, 31(10): 1655-1662. |
[9] | 马晓平, 杨秋霞, 俞演, 李德生, 王承东, 凌珊珊, 古玉. 大熊猫源枝孢样枝孢霉野生株(Z20)与突变株(Zt)部分生物学特性及药敏试验比较[J]. 浙江农业学报, 2018, 30(8): 1328-1335. |
[10] | 雷雪平, 耿毅, 余泽辉, 郑李平, 曹师琪, 黄小丽, 陈德芳, 欧阳萍, 刘恺睿. 棘胸蛙脑膜炎败血伊丽莎白菌的分离鉴定及其感染的病理损伤[J]. 浙江农业学报, 2018, 30(3): 371-377. |
[11] | 马晓平, 杨天意, 俞演, 张志和, 王承东, 古玉. 大熊猫阴道源乳酸杆菌生物学特性研究[J]. 浙江农业学报, 2017, 29(7): 1093-1102. |
[12] | 邹莉,杨苑艺,孙婷婷,王世新,崔嵘,李晶莹. 野生花脸香蘑的分离纯化及ITS序列鉴定[J]. 浙江农业学报, 2016, 28(2): 264-. |
[13] | 谢放,张育,朱玉兰. 一株冬虫夏草相关菌株的生物学特性[J]. 浙江农业学报, 2016, 28(2): 306-. |
[14] | 金群力, 范丽军, 冯伟林, 宋婷婷, 沈颖越, 田芳芳, 蔡为明. 不同栽培原料配方及装瓶容重对金针菇生长发育的影响[J]. 浙江农业学报, 2016, 28(11): 1874-1880. |
[15] | 李静静,丁松爽,李艳平,云菲,阎海涛,王志萌,刘国顺*. 生物炭与氮肥配施对烤烟干物质积累及土壤生物学特性的影响[J]. 浙江农业学报, 2016, 28(1): 96-. |
阅读次数 | ||||||||||||||||||||||||||||||||||||||||||||||||||
全文 506
|
|
|||||||||||||||||||||||||||||||||||||||||||||||||
摘要 427
|
|
|||||||||||||||||||||||||||||||||||||||||||||||||