There has been much
recent activity directed toward engineering devices powered by biological
structures from the molecular to the tissue level. Since individual molecular
motors provide only miniscule amounts of work, the actions of millions or more
must be harnessed in parallel to result in significant activity in the
macroscopic world. The prospects of exploiting natural massively parallel motor
assemblies, such as muscle cells, are very attractive since the production,
organization, and manipulation of the motors from nanometer to millimeter length
scales are coordinated by complex biological molecular machinery refined over
millions of years of natural selection. Engineering muscle cells onto microchips
is an initial but critical step towards fabricating autonomous intelligent
hybrid micromachines since cells have extremely elaborate ways of
self-sustainment, regulation and assembly.
The use of mature
muscle tissues from animals on these devices is impractical and inefficient, as
the tissues must be dissected and incorporated into each device by hand with
crude interfaces between the biological tissues and inorganic materials.
Integration of muscle with microfabricated structures would be optimally
achieved through self-assembling muscle cells on MEMS. However, the unique anisotropic,
structural, and contractile characteristics of muscle bundles complicate the
construction of muscle-powered MEMS structures. Specifically, there exist three
interrelated outstanding problems: 1) to spatially and selectively direct the
growth and maturation of cells on microfabricated substrates, 2) to control the
tight binding of differentiated muscle bundles with the surrounding mechanical
structures, and 3) while maintaining the tight binding in specified locations,
enable the cells and the resultant hybrid structure freedom to
move.
To address these
problems, we have devised a novel system for the creation of self-assembled
muscle-powered microdevices through the manipulation of material interfaces and
phase. Two types of devices will be presented to illuminate the potential of
this fabrication system. One type allows us to characterize in situ the
mechanical properties of the muscle. The mechanical properties of the neonatal
ventricular myocytes 1-3-day-old Sprague-Dawley rats (NRVMs), such as
substrate-induced stress (2-2.5 kPa) and Young’s Modulus (~40 kPa), have been
measured in a direct way. Another has resulted in the first self-assembled
microrobots which move autonomously in response to the contraction of muscle
bundles. Hybrid microrobots with the size of 160 μm can move at speeds of
10-50μm/s for more than 4 hours.
A wide range of
MEMS devices, electronic circuits, and patternable materials can be seamlessly
integrated with a variety of cell types via our established system. The union of
top-down MEMS fabricated structures with those synthesized, organized, and
maintained by the bottom-up processes of biology could create devices with
properties unattainable by either alone.
席建忠,1992-1996年于北京理工大学攻读化工专业,1997-2000年于清华大学攻读分子细胞生物,2000-2002年在康奈尔大学攻读生物工程专业,2001年底随同导师转往加州大学洛杉矶分校(英文缩写为UCLA),主要攻读生物力学、生物材料与组织工程专业,副修分子与细胞生物工程专业,2004年取得生物医学工程博士学位,同时还获得UCLA生物医学工程系年度唯一的优秀博士毕业生称号。2005年3月获得中国教育部2004年国家优秀自费留学生奖。在美国求学期间曾参加过十多次国际学术会议,并做过多次学术报告。2005年7月,他成为北大工学院第一位“优秀青年人才引进计划”的特聘学者。
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