Precursors of pattern specific ommatin in red wing scales of the polyphenic butterfly Araschnia levana L.: Haemolymph tryptophan and 3-hydroxykynurenine

P.B. Koch
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引用次数: 24

Abstract

In the seasonally diphenic butterfly Araschnia levana14C-labelled tryptophan and 3-hydroxykynurenine, the principal precursors of ommochromes, injected into young pupae caused a pattern specific radiolabel of mature red scales. [14C]glucose and [35S]methionine also labelled red scales but only when injected shortly before or during the time of pigment synthesis in the wing. In developing non-diapause pupae contents of 3-hydroxykynurenine increased until an abrupt decrease when pigments appeared in the wings. In diapausing pupae 3-hydroxykynurenine remained low but increased after injection of 20-hydroxyecdysone which induced pupal-adult development. Supply of wing scale cells with ommochrome precursors via the haemolymph was analysed after injection of [3H]tryptophan. In developing pupae haemolymph contents of [3H]tryptophan and [3H]3-hydroxykynurenine increased at the time of wing pigment formation and decreased shortly before adult emergence. In diapausing pupae haemolymph contents of [3H]tryptophan and [3H]3-hydroxykynurenine were low compared to non-diapause pupae but increased at the time of wing pigment formation after injection of 20-hydroxyecdysone. Isolated wings incubated in Grace's medium containing [14C]tryptophan and [14C]3-hydroxykynurenine incorporated radiolabel specifically into red portions of the wing colour pattern due to labelling of ommatin. Incorporation into red wing areas occurred specifically depending on different colour patterns of the spring- and the summer-morph.

The results demonstrate that both tryptophan as well as 3-hydroxykynurenine are delivered via the haemolymph, and both can serve as precursors of ommatin formation in the scale cells. Therefore, the complete set of enzymes for the tryptophan-ommatin pathway is present in scale-forming cells.

多酚蝴蝶红翅鳞中模式特异性结构的前体:血淋巴色氨酸和3-羟基尿氨酸
将14c标记的色氨酸和3-羟基尿氨酸作为同色体的主要前体注射到季节性二苯蝶幼蛹中,可引起成熟红鳞的模式特异性放射性标记。[14C]葡萄糖和[35S]蛋氨酸也被标记为红色鳞片,但仅在翅膀色素合成前不久或期间注射。在发育的非滞育蛹中,3-羟基犬尿氨酸含量增加,但当翅膀上出现色素时,含量突然下降。在滞育蛹中,注射20-羟基蜕皮素后,3-羟基犬尿氨酸水平较低,但升高,诱导蛹成虫发育。在注射[3H]色氨酸后,通过血淋巴分析具有共色素前体的翅鳞细胞的供血情况。发育中的蛹血淋巴中[3H]色氨酸和[3H]3-羟基尿氨酸含量在羽化色素形成时增加,在成虫羽化前不久下降。滞育蛹血淋巴中[3H]色氨酸和[3H]3-羟基犬尿氨酸含量较非滞育蛹低,注射20-羟基蜕皮素后,在翅膀色素形成时血淋巴中[3H]色氨酸和[3H]3-羟基犬尿氨酸含量增加。分离的翅膀在含有[14C]色氨酸和[14C]3-羟基犬尿氨酸的Grace培养基中孵育,由于标记了染色质,将放射性标记特异性地加入到翅膀颜色图案的红色部分。红色翅膀区域的合并具体取决于春季和夏季形态的不同颜色模式。结果表明,色氨酸和3-羟基尿氨酸都是通过血淋巴传递的,两者都可以作为鳞状细胞中染色质形成的前体。因此,在形成鳞片的细胞中存在色氨酸-染色质途径的全套酶。
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