研究者業績

山田 真澄

ヤマダ マスミ  (Masumi Yamada)

基本情報

所属
千葉大学 大学院工学研究院 共生応用化学コース 教授
学位
博士(工学)(2006年3月 東京大学)

J-GLOBAL ID
200901066152886720
researchmap会員ID
6000014797

論文

 90
  • Ayumi Hayashi, Runa Hemmi, Yuhei Saito, Rie Utoh, Tatsuo Taniguchi, Masumi Yamada
    Analytical Chemistry 96(17) 6764-6773 2024年4月30日  査読有り最終著者責任著者
    Tremendous efforts have been made to develop practical and efficient microfluidic cell and particle sorting systems; however, there are technological limitations in terms of system complexity and low operability. Here, we propose a sheath flow generator that can dramatically simplify operational procedures and enhance the usability of microfluidic cell sorters. The device utilizes an embedded polydimethylsiloxane (PDMS) sponge with interconnected micropores, which is in direct contact with microchannels and seamlessly integrated into the microfluidic platform. The high-density micropores on the sponge surface facilitated fluid drainage, and the drained fluid was used as the sheath flow for downstream cell sorting processes. To fabricate the integrated device, a new process for sponge-embedded substrates was developed through the accumulation, incorporation, and dissolution of PMMA microparticles as sacrificial porogens. The effects of the microchannel geometry and flow velocity on the sheath flow generation were investigated. Furthermore, an asymmetric lattice-shaped microchannel network for cell/particle sorting was connected to the sheath flow generator in series, and the sorting performances of model particles, blood cells, and spiked tumor cells were investigated. The sheath flow generation technique developed in this study is expected to streamline conventional microfluidic cell-sorting systems as it dramatically improves versatility and operability.
  • Shota Mashiyama, Runa Hemmi, Takeru Sato, Atsuya Kato, Tatsuo Taniguchi, Masumi Yamada
    Lab on a Chip 24(2) 171-181 2024年1月17日  査読有り最終著者責任著者
    Although droplet microfluidics has been studied for the past two decades, its applications are still limited due to the low productivity of microdroplets resulting from the low integration of planar microchannel structures. In this study, a microfluidic system implementing inverse colloidal crystals (ICCs), a spongious matrix with regularly and densely formed three-dimensional (3D) interconnected micropores, was developed to significantly increase the throughput of microdroplet generation. A new bottom-up microfabrication technique was developed to seamlessly integrate the ICCs into planar microchannels by accumulating non-crosslinked spherical PMMA microparticles as sacrificial porogens in a selective area of a mold and later dissolving them. We have demonstrated that the densely arranged micropores on the spongious ICC of the microchannel function as massively parallel micronozzles, enabling droplet formation on the order of >10 kHz. Droplet size could be adjusted by flow conditions, fluid properties, and micropore size, and biopolymer particles composed of polysaccharides and proteins were produced. By further parallelization of the unit structures, droplet formation on the order of >100 kHz was achieved. The presented approach is an upgrade of the existing droplet microfluidics concept, not only in terms of its high throughput, but also in terms of ease of fabrication and operation.
  • Yuken Hasebe, Masumi Yamada, Rie Utoh, Minoru Seki
    Journal of Bioscience and Bioengineering 135(5) 417-422 2023年5月  責任著者
    Technologies for efficiently expanding Chinese hamster ovary (CHO) cells, the primary host cells for antibody production, are of growing industrial importance. Various processes for the use of microcarriers in CHO suspension cultures have been developed, but there have been very few studies on cell-adhesive microcarriers that are similar in size to cells. In this study, we proposed a new approach to suspension cultures of CHO cells using cell-sized condensed and crosslinked gelatin microparticles (GMPs) as carriers. Unlike commercially available carriers with sizes typically greater than 100 μm, each cell can adhere to the surface of multiple particles and form loose clusters with voids. We prepared GMPs of different average diameters (27 and 48 μm) and investigated their effects on cell adhesion and cluster formation. In particular, small GMPs promoted cell proliferation and increased IgG4 production by the antibody-producing CHO cell line. The data obtained in this study suggest that cell-sized particles, rather than larger ones, enhance cell proliferation and function, providing useful insights for improving suspension-culture-based cell expansion and cell-based biologics production for a wide range of applications.
  • Mai Takagi, Masumi Yamada, Rie Utoh, Minoru Seki
    Lab on a Chip 23(9) 2257-2267 2023年5月  責任著者
    Spheroid formation assisted by microengineered chambers is a versatile approach for morphology-controlled three-dimensional (3D) cell cultivation with physiological relevance to human tissues. However, the limitation in diffusion-based oxygen/nutrient transport has been a critical issue for the densely packed cells in spheroids, preventing maximization of cellular functions and thus limiting their biomedical applications. Here, we have developed a multiscale microfluidic system for the perfusion culture of spheroids, in which porous microchambers, connected with microfluidic channels, were engineered. A newly developed process of centrifugation-assisted replica molding and salt-leaching enabled the formation of single micrometer-sized pores on the chamber surface and in the substrate. The porous configuration generates a vertical flow to directly supply the medium to the spheroids, while avoiding the formation of stagnant flow regions. We created seamlessly integrated, all PDMS/silicone-based microfluidic devices with an array of microchambers. Spheroids of human liver cells (HepG2 cells) were formed and cultured under vertical-flow perfusion, and the proliferation ability and liver cell-specific functions were compared with those of cells cultured in non-porous chambers with a horizontal flow. The presented system realizes both size-controlled formation of spheroids and direct medium supply, making it suitable as a precision cell culture platform for drug development, disease modelling, and regenerative medicine.
  • Natsumi Shimmyo, Makoto Furuhata, Masumi Yamada, Rie Utoh, Minoru Seki
    Analyst 147(8) 1622-1630 2022年4月  責任著者
    Numerous attempts have been made to develop efficient systems to purify trace amounts of circulating tumor cells (CTCs) from blood samples. However, current technologies are limited by complexities in device fabrication, system design, and process operability. Here we describe a facile, scalable, and highly efficient approach to physically capturing CTCs using a rationally designed microfluidic isolator with an array of microslit channels. The wide but thin microslit channels with a depth of several micrometers selectively capture CTCs, which are larger and less deformable than other blood cells, while allowing other blood cells to just flow through. We investigated in detail the effects of the microchannel geometry and operating parameters on the capture efficiency and selectivity of several types of cultured tumor cells spiked in blood samples as the CTC model. Additionally, in situ post-capture staining of the captured cells was demonstrated to investigate the system's applicability to clinical cancer diagnosis. The presented approach is simple in operation but significantly effective in capturing specific cells and hence it may have great potential in implementating cell physics-based CTC isolation techniques for cancer liquid biopsy.

MISC

 159
  • Eiji Shigematsu, Masumi Yamada, Masahiro Yasuda, Minoru Seki
    Micro Total Analysis Systems - Proceedings of MicroTAS 2005 Conference: 9th International Conference on Miniaturized Systems for Chemistry and Life Sciences 1 1452-1454 2005年  
    Ultra-low volume liquid dispensing is one of the most promising tools in the field of biochemical screening. In this study, we propose a novel microdispenser array, in which nanoliter-sized droplets with various concentrations can be accurately generated with simple liquid operations using pneumatic pressure. A dispensing channel that has a pinched segment was fabricated, to exchange two liquids in a specific ratio, which can be controlled by the microchannel geometry. Various reaction conditions were successfully produced, showing this system's validity and applicability. Copyright © 2005 by the Transducer Research Foundation, Inc.
  • Masumi Yamada, Minoru Seki
    Micro Total Analysis Systems - Proceedings of MicroTAS 2005 Conference: 9th International Conference on Miniaturized Systems for Chemistry and Life Sciences 1 1528-1530 2005年  
    We propose here a novel method for continuous particle concentration and separation in microfluidic devices. This method utilizes a laminar flow profile in a microchannel having multiple branches. Only by introducing a liquid with particles continuously into the microchannel, particles are concentrated, separated by size, and collected independently. This method can be categorized as a kind of filtration, but the distributed flow rates into each branch channel determine the size of filtered particles. In this study, polymer particles whose diameters are 1~3 m, were separated and concentrated 20~50-fold. In addition, leukocytes were successfully enriched from blood. Copyright © 2005 by the Transducer Research Foundation, Inc.
  • Masumi Yamada, Yuushi Sai, Junya Takagi, Hirosuke Maenaka, Masahiro Yasuda, Minoru Seki
    8th Topical Conference on Microreaction Technology 2005, Held at the 2005 AIChE Spring National Meeting 67-68 2005年  
    Pinched flow fractionation, a concept of continuous classification of particles using microfabricated channels, is proposed and demonstrated as a micro unit operation. In this method, particles suspended in liquid were continuously introduced into a microchannel having a pinched segment, and were aligned to one sidewall in the pinched segment by another liquid flow without particles. Microdevices were fabricated using rapid prototyping and replica molding methods, and the material was PDMS. This method is applicable for continuous preparation of monodispersed particles in microscale system, since this separation can be rapidly performed in a simple structure.
  • M Yamada, M Nakashima, Y Sai, M Yasuda, M Seki
    Micro Total Analysis Systems 2004, Vol 1 (296) 414-416 2005年  査読有り
    We have demonstrated a new method for particle separation, named 'pinched flow fractionation (PFF)', in microfluidic devices. In this method, particles can be separated continuously according to their sizes, utilizing a laminar flow profile inside a pinched microchannel. First, we performed collection of separated particles using multi-branched microchannel, and next, small size particles (similar to 1 mu m in diameter) were successfully separated using a downsized microchannel. From the results obtained, we have successfully demonstrated that this method is highly applicable for the separation of various kinds of particles. Also it was demonstrated that this method can be applicable not just to particle size analysis, but to preparation of monodispersed particles.
  • 関 実, 山田真澄
    バイオインダストリー 21(12) 19-26 2004年12月  
  • 山田 真澄, 磯村 哲, 佐々木 千津子, 関 実
    日本生物工学会大会講演要旨集 16 242-242 2004年  
  • M. Nakashima, M. Yamada, M. Seki
    Proceedings of the IEEE International Conference on Micro Electro Mechanical Systems (MEMS) 33-36 2004年  査読有り
    We propose here a new method for the continuous and accurate sizing of particles using fluid focusing and spreading in a microdevice, named 'pinched flow fractionation (PFF)'. Particles suspended in liquid were continuously introduced into a microchannel having a specific geometry, and were aligned to one sidewall by the other liquid flow without particles, and then separated according to their sizes by the spreading flow profile inside the channel. For the application of this method, we have successfully performed separation of the mixture of micro polystyrene beads. This method is highly advantageous because of its accuracy, applicability and simplicity in operation.
  • 山田 真澄, 関 実
    日本生物工学会大会講演要旨集 15 191-191 2003年  
  • Masumi Yamada, Minoru Seki
    Proceedings of the IEEE Micro Electro Mechanical Systems (MEMS) 347-350 2003年  査読有り
    A novel microfluidic chamber array system has been developed. This system consists of three-dimensional microchannel and microchamber network, in which nanoliter sized multiple droplets can be accurately metered and mixed simultaneously. Liquid operation was realized using pneumatic pressure due to the hydrophobic surface nature of PDMS microdevice. With this device, single injection of liquid is enough to prepare various sized aliquots, and by mixing two different kinds of liquids, concentration gradient can easily be generated. This system can further be applied to chemical or biochemical analysis, such as, high-throughput screening or blood analysis for point-of-care diagnosis.

書籍等出版物

 5

共同研究・競争的資金等の研究課題

 22

産業財産権

 22