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杂交一:矮秆雄性可育×高秆雄性不育→F1矮秆雄性不育:矮秆雄性可育=1:1;
杂交二:选取F1中的矮秆雄性不育×高秆雄性可育→F2矮秆雄性可育:高秆雄性不育=1:1.
科研人员经过多次实验,在F2中偶然发现一株矮秆雄性不育的植株甲。下列叙述正确的是( )
| A.从杂交一可知,F1中矮秆雄性不育的基因型是RrMm |
| B.若F2的全部植株(不包括甲)自然繁殖,子代中高秆雄性可育植株占1/4 |
| C.若甲为矮秆雄性不育三体植株,则其不会产生基因型为Rrmm的配子 |
| D.若甲为矮秆雄性不育二倍体植株,则可能是父本发生了基因突变 |
同类型试题
y = sin x, x∈R, y∈[–1,1],周期为2π,函数图像以 x = (π/2) + kπ 为对称轴
y = arcsin x, x∈[–1,1], y∈[–π/2,π/2]
sin x = 0 ←→ arcsin x = 0
sin x = 1/2 ←→ arcsin x = π/6
sin x = √2/2 ←→ arcsin x = π/4
sin x = 1 ←→ arcsin x = π/2
y = sin x, x∈R, y∈[–1,1],周期为2π,函数图像以 x = (π/2) + kπ 为对称轴
y = arcsin x, x∈[–1,1], y∈[–π/2,π/2]
sin x = 0 ←→ arcsin x = 0
sin x = 1/2 ←→ arcsin x = π/6
sin x = √2/2 ←→ arcsin x = π/4
sin x = 1 ←→ arcsin x = π/2
