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
  • 山田真澄
    化学とマイクロ・ナノシステム学会誌 19(2) 42-43 2020年9月  筆頭著者最終著者責任著者
  • 山田真澄
    ぶんせき 341-341 2020年9月  筆頭著者責任著者
  • Hideki Iwadate, Naoki Kimura, Rina Hashimoto, Yuya Yajima, Rie Utoh, Masumi Yamada, Minoru Seki
    21st International Conference on Miniaturized Systems for Chemistry and Life Sciences, MicroTAS 2017 177-178 2020年  
    A new process is presented to fabricate basement membrane-mimetic cell co-culture platforms using microfabricated PDMS stencil plates. An aqueous solution of extracellular matrices (ECM) was introduced into the through-holes of the microstencil plate and then dried, to form vitrified and condensed ECM films. Because the microstencil plate physically supported the films, we were able to produce significantly thin ECM films with a thickness of 0.5-2 μm, which is comparable to the basement membranes in vivo (< 1 μm). We co-cultured heterotypic cells on both sides of the film, demonstrating the usability of the presented platform in investigating cellular physiology.
  • Mayu Fukushi, Yuya Yajima, Rie Utoh, Masumi Yamada, Kazuya Furusawa, Minoru Seki
    21st International Conference on Miniaturized Systems for Chemistry and Life Sciences, MicroTAS 2017 1145-1146 2020年  
    Here we present a new approach to rapid formation of collagen gel tubes using microfluidic devices made of phosphate particle-embedding PDMS (PP-PDMS). An acidic solution of collagen, introduced into the PP-PDMS channel, was rapidly transformed into a hydrogel layer on the channel surface because it was neutralized by the phosphate ions supplied from the PP-PDMS substrate. After removing the non-gelled collagen solution at the center, collagen gel tubes were obtained. Based on this concept, we successfully fabricated vascular tissue-like multilayered structures incorporating vascular endothelial cells (ECs) and smooth muscle cells (SMCs). The presented technique is highly useful for preparing functional tubular tissues that reconstituted the in vivo tissue-like extracellular matrix environments.
  • Natsumi Shimmyo, Makoto Furuhata, Masumi Yamada, Rie Utoh, Minoru Seki
    MicroTAS 2020 - 24th International Conference on Miniaturized Systems for Chemistry and Life Sciences 1155-1156 2020年  
    Here we present an efficient microfluidic system for selectively capturing circulating tumor cells (CTCs) from blood samples, employing parallelized structures of cell trappers. The thin configuration of the trapper (depth of several micrometers) enables capture of CTCs based on physical characteristics; CTCs are larger and less-deformable than other blood cells. Parallelization of the cell trappers achieved high-throughput processing of the blood sample (~100 µL/min) and a high capture efficiency (~90%) of CTCs despite the simple configuration of the trapper. The presented system would be applicable to easy, low-cost, and highly sensitive cancer diagnosis for tumor patients.
  • Takeru Sato, Yurika Sakurai, Masumi Yamada, Minoru Seki
    MicroTAS 2020 - 24th International Conference on Miniaturized Systems for Chemistry and Life Sciences 753-754 2020年  
    Here we present a medium exchange system for cell culture applications using microfluidic devices partially made of a micropored substrate as fluid drainage. The microdevices were fabricated by bonding a microchannel-embedding PDMS plate with a partially-pored plate, which was created via particle leaching technique. The medium of a cell/particle suspension was removed from the main channel through the micropores, achieving efficient exchange of the medium. We examined the medium-exchange behaviors using model microparticles and dyed solutions, demonstrating that liquid switching was rapidly achieved. The presented system would be highly useful as a new tool for various cell culture experiments.
  • Yurika Sakurai, Takeru Sato, Masumi Yamada, Minoru Seki
    MicroTAS 2020 - 24th International Conference on Miniaturized Systems for Chemistry and Life Sciences 643-644 2020年  
    Here we propose a new scheme for particle sorting using cross-flow microfluidic devices incorporating a porous PDMS substrate. The porous region, prepared by dissolving sacrificial particles encapsulated in the PDMS prepolymer, allows small particles selectively to flow through the pores, resulting in continuous size-based particle sorting. We designed and fabricated a parallelized channel system to enhance the throughput of particle sorting. As a cell-sorting application, direct enrichment of leukocytes from a diluted blood sample was demonstrated. The presented system does not require complicated fabrication processes of precise microstructures, and hence it would provide new insights into microfluidic particle/cell sorting technologies.
  • Mai Takagi, Masumi Yamada, Minoru Seki
    MicroTAS 2020 - 24th International Conference on Miniaturized Systems for Chemistry and Life Sciences 849-850 2020年  
    Here we present a unique perfusion cell culture system capable of forming uniformly-sized multicellular aggregates utilizing microcavities embedded in a spongelike PDMS matrix. The combination of a particle leaching method and a replica molding technique allows us to integrate microfluidic channels and the microcavities, where the medium flow could be directly supplied through the cavities via the surrounding continuous micropores. We cultured mammalian cells and achieved high cell viability because of the efficient supply of the culture medium to the cells. The presented system offers a versatile approach to the efficient perfusion culture of mammalian cells for various biochemical applications.
  • Natsumi Miura, Masumi Yamada, Minoru Seki
    MicroTAS 2020 - 24th International Conference on Miniaturized Systems for Chemistry and Life Sciences 731-732 2020年  
    Here we propose an efficient approach to processing mammalian cells using microfluidic devices integrated with spongious PDMS matrices having continuous micropores. The micropores on the sponge surface created by dissolving sacrificial microparticles were able to gently trap cells, followed by multistep cell treatment and staining by repeated introduction of reagents. Intercellular molecules were successfully stained with minimal reagent consumption and minimal cell loss. Further cell recovery was also possible by reverse infusion of a buffer. The presented system would help biological researchers in processing cells for biological studies and clinical diagnostics because of its simplicity in operation and versatility.
  • 青山周平, 秋山雄斗, 門田健次, 山田真澄, 関 実
    化学とマイクロ・ナノシステム学会誌 18(2) 25-28 2019年10月  
  • 山田真澄
    粉体工学会誌 56(7) 398-402 2019年7月  筆頭著者最終著者責任著者
  • 山田真澄
    化学装置 61(3) 30-35 2019年3月  筆頭著者最終著者責任著者
  • 穆 廷林, 豊田 一, 山田真澄, 鵜頭理恵, 関 実
    化学とマイクロ・ナノシステム学会誌 18(1) 36-37 2019年3月  
  • 山田真澄
    HABニュースレター 25(2) 2019年2月  筆頭著者最終著者責任著者
  • Naotaka Jin, Jumpei Yamamoto, Masumi Yamada, Kazuki Iijima, Koji Katayama, Minoru Seki
    23rd International Conference on Miniaturized Systems for Chemistry and Life Sciences, MicroTAS 2019 608-609 2019年  
    Here we proposed a new high-throughput, continuous microfluidic device for particle/cell separation based on pinched flow fractionation. In the newly-proposed system, a wide and shallow microchannel is fabricated and particles are separated in the depth-direction of the microchannel. We successfully increased the throughput of the particle separation with high accuracy simply by enlarging the microchannel only in the width direction without the fabrication difficulty. The presented particle/cell separation design (Vertical Slit-Fractionation) would be useful for versatile high-throughput systems for particle/cell separation.
  • Shuhei Aoyama, Yuto Akiyama, Kenji Monden, Masumi Yamada, Minoru Seki
    23rd International Conference on Miniaturized Systems for Chemistry and Life Sciences, MicroTAS 2019 675-676 2019年  
    Here we present lateral flow immunoassay platforms consisted of polymeric sheets with micro/nanoimprinted multiscale architectures. Microcone arrays with nanometer-scale surface roughness were prepared by thermal nano-imprinting. The dramatically enhanced surface area of the microcones contributed to effective immobilization of primary antibodies. Liquid samples were transported through the sheet with the help of a surfactant added to the sample/reagent solutions. We successfully demonstrated immunoassays of C-reactive protein spiked in serum with the detection limit of ~0.1 μg mL . The presented immunoassay platforms are advantageous because of the high reproducibility and sensitivity, and would be suitable for point-of-care testing. -1
  • Misaki Kato, Mayu Fukushi, Masumi Yamada, Rie Utoh, Minoru Seki
    23rd International Conference on Miniaturized Systems for Chemistry and Life Sciences, MicroTAS 2019 282-283 2019年  
    Here we present a unique process to fabricate type-I collagen hydrogels integrated in microfluidic devices, with the help of gelation agent-incorporating composite PDMS substrates. We fabricated microfluidic devices made of phosphate particle-embedding polydimethylsiloxane (PP-PDMS). Simply by introducing an acidic collagen solution into the channels, the solution near the PP-PDMS surface was selectively gelled, because of the neutralization effects of the phosphate ions. We successfully fabricated cell-encapsulating collagen microgels, and performed perfusion cultivation for the cells, showing the high usability of the presented approach. The presented collagen based microgels would be useful as cell culture platforms for organs-on-a-chip applications.
  • Takatomo Ouchi, Yurika Sakurai, Kayo Nakada, Masumi Yamada, Minoru Seki
    23rd International Conference on Miniaturized Systems for Chemistry and Life Sciences, MicroTAS 2019 592-593 2019年  
    Here we present a particle separation system utilizing microengineered PDMS plates with micrometer-sized continuous pores as the sieving matrix. The continuous micropores were formed using sacrificial microparticles embedded in and dissolved from the PDMS substrate. Filtration devices were fabricated by sandwiching the porous PDMS plate with upper/lower plates having planar microchannels. We confirmed that the separation of submicrometer-sized particles was possible even when we employed sacrificial NaCl particles with several ten micrometers, showing the high sieving ability of the microporous PDMS. This system would be significantly useful as a new tool for separating/sorting various types of synthetic and biological microparticles.
  • Yoshimasa Minoda, Aruto Hori, Rie Utoh, Masumi Yamada, Minoru Seki
    23rd International Conference on Miniaturized Systems for Chemistry and Life Sciences, MicroTAS 2019 326-327 2019年  
    Although various types of hydrogel-based 3D cell culture systems have been developed, creation of micrometer-sized capillaries as the conduits in bulk-scale hydrogels still remains a challenge. Here we present a highly efficient strategy to form cell-encapsulating hydrogels equipped with densely-packed continuous micropores. Sacrificial alginate-based microfibers were prepared using microfluidic devices, which were fragmented and incorporated in the hydrogel precursor solutions. Simply by dissolving the fibers after hydrogel formation, microcapillaries with diameters of 10-30 μm were formed. The presented approach would be useful for cell culture applications including cellular physiological studies, drug development, and tissue/organ regeneration.
  • Aruto Hori, Yuki Watabe, Yuya Yajima, Rie Utoh, Masumi Yamada, Minoru Seki
    MHS 2018 - 2018 29th International Symposium on Micro-NanoMechatronics and Human Science 2018年12月  
    Although various types of hydrogel-based 3D cell culture platforms have been developed, it is difficult to prepare porous hydrogels encapsulating intact cells and having capillary networks with a one-step procedure. Here we propose a facile strategy to prepare microvasculature-embedding porous hydrogels for 3D cell culture, utilizing an aqueous two-phase dispersion system. We used an aqueous solution of photo-crosslinkable gelatin (GelMA) and polyethylene glycol (PEG) to form an aqueous two-phase dispersion system. A bi-continuous state was generated by re-mixing these two phases at a proper mixing ratio, and a sponge-like, porous hydrogel could be formed by selectively crosslinking the GelMA-rich phase via UV irradiation. We successfully encapsulated mammalian cells in the hydrogel matrix with a high cell viability, and confirmed that the porous hydrogel was superior to homogeneous hydrogels for cell culture. The presented hydrogel would be applicable to 3D-cell culture for various types of biomedical applications.
  • Hideki Iwadate, Naoki Kimura, Rina Hashimoto, Yuya Yajima, Rie Utoh, Masumi Yamada, Minoru Seki
    MHS 2018 - 2018 29th International Symposium on Micro-NanoMechatronics and Human Science 2018年12月  
    Here we present a new process to prepare cell co-culture platforms incorporating thin extracellular matrix (ECM) membranes. We utilized PDMS microstencil plates to generate thin ECM membranes, which were physically stabilized in the micro through holes of the stencil plate. An aqueous solution of ECM (type I collagen or Matrigel) was introduced into the micro-holes of the stencil plate, and then it was dried to form a condensed ECM membrane. The thickness of the ECM membrane was controlled from 0.1 to 0.5 μm simply by changing the initial concentration of the ECM solution and/or the depth of the micro-holes. We performed heterotypic cell co-culture on both surfaces of the ECM membranes, demonstrating the high usability for mammalian cell culture. The presented thin ECM membranes would be applicable to the reconstruction of cell-friendly environment mimicking the in vivo tissue structures and to the cell-based drug assay systems.
  • 佐伯琴音, 榎本紗希子, 矢嶋祐也, 鵜頭理恵, 山田真澄, 関 実
    化学とマイクロ・ナノシステム学会誌 17(2) 27-28 2018年9月  
  • Manami Sugimoto, Yoichi Kitagawa, Yuya Yajima, Rie Utoh, Masumi Yamada, Minoru Seki
    MHS 2017 - 28th 2017 International Symposium on Micro-NanoMechatronics and Human Science 2018-January 1-4 2018年2月28日  
    In this study, we propose a new cell culture system using microengineered hierarchical hydrogel sheets, which enables guidance and evaluation of cancer cell invasion in 3D environments. Three-layered hydrogel sheets, which encapsulated cancer cells in the patterned middle layer, were placed on a collagen hydrogel. Because the direction of nutrition is only from the collagen gel to the sheets, cell invasion was guided to the basal collagen gel as in the case of epithelial tissues. In the experiment, we fabricated hierarchically-engineered alginate-based hydrogel sheets using multi-laminated microfluidic devices, and clearly demonstrated that embedded cancer cells invasion was guided to the collagen layer. By counting the number of cells reaching the collagen gel, the evaluation of cell invasion would become possible. The proposed system would be useful because it realizes facile and precise cell migration assays in 3D platforms.
  • Aruto Hori, Yuki Watabe, Yuya Yajima, Rie Utoh, Masumi Yamada, Minoru Seki
    22nd International Conference on Miniaturized Systems for Chemistry and Life Sciences, MicroTAS 2018 3 1428-1430 2018年  
    Although many types of hydrogel-based cell culture platforms have been proposed, techniques for preparing microvasculature-embedded hydrogels haven’t been fully developed. Here we propose a facile and versatile strategy to fabricate hydrogel sponges, which can embed intact cells into the matrix, utilizing an aqueous two-phase system. GelMA- and PEG-rich phases were dispersed to form a bicontinuous state, then the GelMA-rich phase was selectively gelled to form the micro-sponge structures. We cultured mammalian cells in the sponges and evaluated the cell functions. Additionally, we performed perfusion culture, successfully demonstrating the usability of the presented platform in constructing tissue models or organs-on-a-chip systems.
  • Kotone Saeki, Masumi Yamada, Sakiko Enomoto, Yuya Yajima, Rie Utoh, Minoru Seki
    22nd International Conference on Miniaturized Systems for Chemistry and Life Sciences, MicroTAS 2018 3 1442-1444 2018年  
    Here we present a microfluidic system to produce linear cell assemblies, which were simultaneously wrapped with thin collagen membranes, using multilayered microfluidic devices. A cell suspension with a polymeric thickener (for core) and an aqueous solution of collagen (for shell) were concentrically patterned using the micronozzle-array structure. The shell of the collagen solution was subsequently gelled into thin membranes by phosphate-based pH modulation, resulting in the formation of linear assemblies of cells. We successfully generated hepatic-cord like microorganoids composed of liver cells. The presented strategy is highly useful as a unique technique to prepare linear tissue models for drug evaluation and cellular biological studies.
  • Makoto Furuhata, Masumi Yamada, Minoru Seki
    22nd International Conference on Miniaturized Systems for Chemistry and Life Sciences, MicroTAS 2018 3 1254-1256 2018年  
    Although many researchers have been tackling on the sorting/capture of circulating tumor cells (CTCs) in blood samples, highly efficient, user-friendly, and cost-effective methodologies are still under development. Here we demonstrated that an extremely simple, thin and planar slit channel system effectively works as a deformabilitybased capture platform for CTCs. We found that the depth of the slit channels (2-5 μm) is a key parameter dominating the trapping efficiency. Furthermore, release of the captured CTCs was possible simply by applying a high flow rate. The presented microfluidic system would be useful as a new platform to detect/characterize various types of rare cell populations in a blood sample.
  • 山田真澄, 関 実
    バイオサイエンスとインダストリー 75(5) 424-426 2017年9月  
  • 福士万由, 矢嶋祐也, 古澤和也, 鵜頭理恵, 山田真澄, 関 実
    化学とマイクロ・ナノシステム学会誌 16(2) 24-25 2017年9月  責任著者
  • 岩舘秀樹, 木村尚貴, 橋本里奈, 矢嶋祐也, 鵜頭理恵, 山田真澄, 関 実
    化学とマイクロ・ナノシステム学会誌 16(2) 34-35 2017年9月  責任著者
  • 山田 真澄, 関 実
    社団法人日本磁気学会研究会資料 = Bulletin of Topical Symposium of the Magnetics Society of Japan 214 7-11 2017年8月3日  
  • 山田真澄, 関 実
    化学工学 81(6) 294-297 2017年6月  筆頭著者責任著者
  • 宮崎満理, 堀 綾香, 矢嶋祐也, 鵜頭理恵, 山田真澄, 関 実
    化学とマイクロ・ナノシステム学会誌 16(1) 43-44 2017年3月  責任著者
  • 山田真澄, 関 実
    化学装置 59(3) 33-38 2017年3月  筆頭著者責任著者
  • Hisataka Hiramatsu, Ayaka Hori, Yuya Yajima, Masumi Yamada, Minoru Seki
    2016 International Symposium on Micro-NanoMechatronics and Human Science, MHS 2016 2017年1月18日  査読有り
    Here we propose a facile and versatile process to fabricate cell-sized protein microfibers using microfluidic spinning system and sacrificial layers of alginate. A precursor solution containing protein molecules and sodium alginate (Na-Alg), a buffer solution, and a gelation solution were introduced into the microfluidic devices, forming composite microfibers comprising Ca-Alg and the protein. After chemically cross-linking the protein molecules and removing the alginate polymer, microfibers made of proteins were obtained. We demonstrated two processes, uniform fiber production using a simple microchannel and parallel production of narrow fibers using multilayered microfluidic devices. As an application, we cultured mammalian cells within hydrogel matrices incorporating gelatin microfibers, and evaluated the effects of the fibers on cell proliferation and network formation. The presented microfluidic process would be useful for fabricating cell-sized microfibers made of proteins which are applicable to 3D cell cultivation and tissue engineering.
  • 山田真澄
    80(11) 754 2016年11月  筆頭著者責任著者
  • Masumi Yamada, Kazuma Takahashi, Ayaka Hori, Sari Sugaya, Minoru Seki
    2015 International Symposium on Micro-NanoMechatronics and Human Science, MHS 2015 2016年3月21日  
    Here we present microfluidic systems to produce micrometer-sized particles made of proteins, using monodisperse droplets in a non-equilibrium state. Droplets of an aqueous solution of protein were formed in the continuous phase of a water-dissolving polar organic solvent, and then the droplets were shrunk because of the dissolution of water molecules. Protein molecules were precipitated, and then stable protein microparticles were obtained after the crosslinking reaction. We obtained spherical/non-spherical protein microparticles using several types of proteins, and examined factors affecting the particle morphology. In particular, highly unique tear-drop-shaped particles and hemispherical particles were obtained when incompletely dehydrated droplets were crosslinked. In addition, we cultured mammalian cells on the particles made of collagen, demonstrating the applicability of the particles as cell-culture scaffolds. The presented protein microparticles would be useful as carriers or scaffolds for various biological/medical applications.
  • Takuma Yanai, Masumi Yamada, Wataru Seko, Minoru Seki
    2015 International Symposium on Micro-NanoMechatronics and Human Science, MHS 2015 2016年3月21日  
    In the last decade, various types of microfluidic cell/particle sorting devices have been developed, but most of these devices have limitations in terms of the relatively low throughput. In this paper, we describe a new scheme for continuous particle sorting, using high-density, lattice-shaped, and dual-depth microchannel networks. The lattice pattern composed of perpendicularly crossing deeper main channels and shallower separation channels, and the main channels are slanted against the overall flow direction. When particle suspension is continuously introduced, smaller particles reach the ceiling of the main channel, whereas larger particles do not. Consequently, larger particles enter the separation channels more frequently, resulting in the continuous particle separation. In the experiment, we successfully sorted microparticles based on size. In addition, the effects of the microchannel geometries and the vertical position of particles on the sorting efficiency were investigated. As application to biological samples, we demonstrated cell sorting using cultured mammalian cells. The presented mechanism of size-based particle sorting would be applicable to various research and industrial fields.
  • Sakiko Enomoto, Yuya Yajima, Yuki Watabe, Masumi Yamada, Kazuya Furusawa, Minoru Seki
    2015 International Symposium on Micro-NanoMechatronics and Human Science, MHS 2015 1-4 2016年3月21日  査読有り
    Here we propose a simple but efficient method to produce collagen hydrogel microfibers using a microfluidic spinning system and a formation technique of collagen gels in a phosphate buffer. An aqueous solution of type I collagen was introduced into the microfluidic devices together with a phosphate buffer and distilled water. Parallel laminar flow was stably formed in the microchannel, and the collagen solution was transformed into microfibers with a uniform diameter. We examined factors affecting the fiber diameter and successfully obtained microfibers with a diameter from and sim;8 to and sim;30 μm. In addition, we confirmed that cells adhered on the surface of the microfibers and proliferated after culturing for several days. The presented method is advantageous because it enables the production of collagen microfibers under a wet condition without using complicated operations, organic solvents, or crosslinking reagents.
  • Sakiko Enomoto, Yuya Yajima, Yuki Watabe, Masumi Yamada, Rie Utoh, Kazuya Furusawa, Minoru Seki
    20th International Conference on Miniaturized Systems for Chemistry and Life Sciences, MicroTAS 2016 1132-1133 2016年  
    Here we report a new process to produce non-crosslinked collagen microfibers using microfluidic devices. An acidic solution of collagen was introduced into a microchannel and it was transformed into microfibers because the pH was modulated by the co-introduced phosphate buffer and collagen molecules were organized into fibrils. We optimized the phosphate concentration and successfully obtained microfibers with a diameter of 8-30 μm. The fibers maintained bioactive properties and were utilized as scaffolds for culturing cells in a 3D environment. The presented process is advantageous because it enables facile production of chemically non-crosslinked collagen microfibers that are useful for biomedical applications.
  • Mari Miyazaki, Ayaka Hori, Yuya Yajima, Masumi Yamada, Minoru Seki
    20th International Conference on Miniaturized Systems for Chemistry and Life Sciences, MicroTAS 2016 405-406 2016年  
    Here we propose a new strategy for constructing perfusable block-shaped microtissues embedding capillary networks, using collagen microbeads (CMBs) as particulate scaffolds. CMBs with an average diameter of ∼8 μm were prepared via membrane emulsification, and they were accumulated in a perfusion chamber together with vascular endothelial cells (ECs). After perfusion culture for several days, 3D block-shaped tissues incorporating capillary networks were formed, which were then recovered from the chamber. The presented tissue blocks would be useful as tools for constructing larger 3D tissues and platforms for evaluating drug metabolism and cellular physiology.
  • Manami Sugimoto, Yoichi Kitagawa, Masumi Yamada, Minoru Seki
    20th International Conference on Miniaturized Systems for Chemistry and Life Sciences, MicroTAS 2016 567-568 2016年  
    Here we present a new cell culture system using microengineered hierarchical hydrogel sheets, which enables guidance and evaluation of cancer cell invasion in 3D environments. Three-layered hydrogel sheets embedding cancer cells in the middle layer were placed on a collagen hydrogel in an open air. Because the supply of nutrition is directionally regulated from the collagen gel to the sheets, cell invasion is guided only to the basal collagen gel as in the case of epithelial tissues. We prepared hierarchical hydrogel sheets using multilaminated microfluidic devices, and observed the invasion behavior of melanoma cells to the collagen gel.
  • Hajime Toyoda, Masumi Yamada, Minoru Seki
    20th International Conference on Miniaturized Systems for Chemistry and Life Sciences, MicroTAS 2016 313-314 2016年  
    Here we propose a microfluidic device for continuous, multistep cell processing. Multiple microfluidic units for carrier-medium exchange, based on the principle of hydrodynamic filtration, were connected in tandem using time-tunable ex-chip tubes. We achieved almost perfect carrier medium exchange, and successfully changed the retention time for each step (1-30 min). We demonstrated 4-step processing to double stain cytoskeleton and cell nucleus. The presented system is highly useful because it dramatically simplifies the conventional cell processing protocols via centrifugation-based medium exchange, and would be widely applicable to general biological studies.
  • 山腰健太, 山田真澄, 関 実
    化学とマイクロ・ナノシステム学会誌 14(1) 37-38 2015年3月  責任著者
  • Kosei Endo, Takahisa Anada, Masumi Yamada, Minoru Seki, Keiichi Sasaki, Osamu Suzuki
    2014 International Symposium on Micro-NanoMechatronics and Human Science, MHS 2014 2015年1月9日  
    This study was designed to investigate whether octacalcium phosphate (OCP) in alginate (Alg) composite promotes osteoblastic differentiation of mouse bone marrow stromal ST-2 cells and composite releases the cells outside after incubation. The results suggested that Alg/OCP composite could be a good device for bone tissue engineering.
  • Wataru Seko, Masumi Yamada, Minoru Seki
    2014 International Symposium on Micro-NanoMechatronics and Human Science, MHS 2014 2015年1月9日  査読有り
    Here we describe a continuous particle/cell sorting system using asymmetrically patterned, lattice-shaped microchannel array structures. The microchannel is composed of two types of microchannels, which are placed in a lattice pattern at a right angle. There is a difference between the densities of these two types of microchannels, which generates the asymmetric flow distribution at every intersection. Large particles/cells are separated from the streamline, resulting in the continuous size-dependent cell sorting. We fabricated PDMS microfluidic devices, and successfully sorted micrometer-sized particles based on size with high separation accuracy. It was clearly shown that the separation size of particles/cells was dominated by the microchannel geometries including the densities of the microchannels and the slanted angles. As an application for cell sorting, we demonstrated the blood cell separation from a diluted blood sample. Erythrocytes and leucocytes were accurately separated and the ratio of recovered leucocytes was raised to ∼80%. The presented scheme of particle/cell sorting would become a simple but versatile tool that is useful for general medical and biochemical experiments.
  • Natsuki Nakajima, Kenta Yamakoshi, Yuya Yajima, Masumi Yamada, Minoru Seki
    2014 International Symposium on Micro-NanoMechatronics and Human Science, MHS 2014 2015年1月9日  査読有り
    Here we demonstrate the fabrication of non-spherical hydrogel microstructures that are useful as building blocks for tissue engineering, by utilizing non-equilibrium aqueous two-phase systems (ATPS) in microchambers. A dextran (Dex) solution containing cells and hydrogel precursor was introduced into microfabricated chambers, which was gradually shrunk and deformed after pouring a polyethylene glycol (PEG) solution. By further adding a gelation agent, we successfully obtained non-spherical (toroidal or cup-shaped) cell-laden hydrogel microstructures. We were able to control the hydrogel morphology by using microchambers with different geometries, changing the compositions of the solutions, and modifying the surface property of the microchamber.
  • 宮崎 満理, 堀 綾香, 矢嶋 祐也, 山田 真澄, 関 実
    日本生物工学会大会講演要旨集 67 332-332 2015年  
  • 矢嶋 祐也, 堀 綾香, 山田 真澄, 関 実
    日本生物工学会大会講演要旨集 67 145-145 2015年  
  • Keita Kinoshita, Masaki Iwase, Masumi Yamada, Minoru Seki
    MicroTAS 2015 - 19th International Conference on Miniaturized Systems for Chemistry and Life Sciences 135-137 2015年  
    Here we present a new approach for fabricating vascular tissue models by depositing alginate hydrogel layers with cells inside BaCl powder-embedding polydimethylsiloxane (BaCl -PDMS) channel structures. An aqueous solution of RGD-peptide-conjugated sodium alginate (NaAlg) solution with smooth muscle cells (SMCs) was introduced into the BaCl -PDMS channel structures, forming Ba-alginate hydrogel layer on the channel surfaces because of the supply of Ba ions. Endothelial cells (ECs) were then introduced, forming vascular tissues with multilayered, branched, and hollowed structures. The arterial pressure was reproduced in the fabricated vascular tissues. The presented technique is highly useful for preparing functional vascular tissue models to investigate cellular physiology in vitro. 2 2 2 2+
  • Takuma Yanai, Masumi Yamada, Wataru Seko, Minoru Seki
    MicroTAS 2015 - 19th International Conference on Miniaturized Systems for Chemistry and Life Sciences 2065-2067 2015年  
    This paper reports a new system for size-based sorting of microparticles/cells using lattice-shaped, dual-depth microchannel networks. The lattice pattern is slightly slanted in relation to the overall flow direction, generating the asymmetric flow distribution at each cross section. Smaller particles can reach near the ceiling of the deep "main channel", whereas larger particles enter the shallow "separation channel" more frequently, resulting in the continuous particle separation. In the experiment, we successfully sorted microparticles based on size and suggested the potential for cell concentration. The presented mechanism of size-based particle sorting would be applicable to various biological or industrial fields.

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