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首页> 外文期刊>The Journal of Experimental Biology >Caudal fin shape modulation and control during acceleration, braking and backing maneuvers in bluegill sunfish, Lepomis macrochirus
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Caudal fin shape modulation and control during acceleration, braking and backing maneuvers in bluegill sunfish, Lepomis macrochirus

机译:大鳍g鱼Lepomis macrochirus在加速,制动和后仰动作期间的尾鳍形状调制和控制

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Evolutionary patterns of intrinsic caudal musculature in ray-finned fishes show that fine control of the dorsal lobe of the tail evolved first, followed by the ability to control the ventral lobe. This progression of increasing differentiation of musculature suggests specialization of caudal muscle roles. Fine control of fin elements is probably responsible for the range of fin conformations observed during different maneuvering behaviors. Here, we examine the kinematics of the caudal fin and the motor activity of the intrinsic caudal musculature during kick-and-glide, braking and backing maneuvers, and compare these data with our previous work on the function of the caudal fin during steady swimming. Kick-and-glide maneuvers consisted of large-amplitude, rapid lateral excursion of the tail fin, followed by forward movement of the fish with the caudal fin rays adducted to reduce surface area and with the tail held in line with the body. Just before the kick, the flexors dorsalis and ventralis, hypochordal longitudinalis, infracarinalis and supracarinalis showed strong activity. During braking, the dorsal and ventral lobes of the tail moved in opposite directions, forming an ;S'-shape, accompanied by strong activity in the interradialis muscles.During backing up, the ventral lobe initiated a dorsally directed wave along the distal edge of the caudal fin. The relative timing of the intrinsic caudal muscles varied between maneuvers, and their activation was independent of the activity of the redmuscle of the axial myomeres in the caudal region. There was no coupling of muscle activity duration and electromyographic burst intensity in the intrinsic caudal muscles during maneuvers, as was observed in previous work on steady swimming. Principal-component analysis produced four components that cumulatively explained 73.6% of the variance and segregated kick-and-glide, braking and backing maneuvers from each other and from steady swimming. The activity patterns of the intrinsic caudal muscles during maneuvering suggest motor control independent from myotomal musculature, and specialization of individual muscles for specific kinematic roles.
机译:鳍鳍鱼的内在尾端肌肉组织的进化模式显示,先对尾巴的背叶进行精细控制,然后再对腹侧叶进行控制。肌肉组织分化程度的提高提示尾肌角色的特殊化。鳍元素的精细控制可能是在不同操纵行为期间观察到的鳍构象范围的原因。在这里,我们检查了脚蹼的运动学以及脚底滑行,制动和后仰动作期间尾鳍固有肌肉组织的运动活动,并将这些数据与我们先前关于稳定游泳中尾鳍功能的研究进行了比较。尾翼滑行动作包括大幅度,尾鳍的侧向快速偏移,随后鱼的向前运动以及尾鳍射线的加入以减小表面积以及尾巴与身体成一条直线。在踢前,屈肌背侧和腹侧,下弦纵肌,腹下肌和胸上肌表现出强烈的活动。制动过程中,尾巴的背侧和腹侧瓣向相反方向运动,形成一个'S'形,并伴有muscle间肌的强力活动。尾鳍。固有的尾部肌肉的相对定时在操纵之间变化,并且它们的激活独立于尾部区域的轴性单体的红肌的活性。如先前在稳定游泳中的研究中所观察到的那样,在操纵过程中,固有intrinsic肌的肌肉活动持续时间与肌电图爆发强度没有耦合。主成分分析产生了四个成分,这些成分累计解释了73.6%的方差,并且将突跳和滑行,制动和后仰动作彼此分开以及与稳定游泳分开。操纵过程中固有的尾部肌肉的活动模式表明运动控制独立于肌层肌肉组织,并且个别肌肉专门用于特定运动学角色。

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