Updated on 2026/09/08

写真a

 
Ohashi Ayaka
 
Organization
Faculty of Environmental, Life, Natural Science and Technology Special-Appointment Assistant Professor
Position
Special-Appointment Assistant Professor
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Degree

  • PhD in Science ( 2026.3   Okayama University )

Research History

  • Okayama University   学術研究院環境生命自然科学学域

    2026.4

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  • Japan Society for Promotion of Science

    2025.4 - 2026.3

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Papers

  • Posterior shift of Shh-Fgf signaling in axolotl limb regeneration drives sequential digit formation

    Saya Furukawa, Sakiya Yamamoto, Haruki Nakayama, Ayaka Ohashi, Akira Satoh

    iScience   29 ( 6 )   116256 - 116256   2026.6

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    Publishing type:Research paper (scientific journal)   Publisher:Elsevier BV  

    DOI: 10.1016/j.isci.2026.116256

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  • FGF2 rescues denervation-induced muscle atrophy in Ambystoma mexicanum. Reviewed International journal

    Haruki Nakayama, Ayaka Ohashi, Sakiya Yamamoto, Saya Furukawa, Akira Satoh

    Skeletal muscle   2026.2

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    Language:English   Publishing type:Research paper (scientific journal)  

    DOI: 10.1186/s13395-026-00413-w

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  • Dorsoventral-mediated Shh induction is required for axolotl limb regeneration Reviewed

    Sakiya Yamamoto, Saya Furukawa, Ayaka Ohashi, Mayuko Hamada, Akira Satoh

    elife   2025.12

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    Publisher:eLife Sciences Publications, Ltd  

    Axolotls (Ambystoma mexicanum) exhibit a remarkable ability to regenerate limbs after amputation. Classical experiments have suggested that contact between cells derived from distinct orientations— dorsal, ventral, anterior, and posterior—within the regenerating blastema is necessary for accurate limb pattern formation. However, the molecular basis for this requirement has remained largely unknown. Here, we demonstrate that both dorsal and ventral tissues are required for limb formation via induction of Shh expression, which plays a crucial role in limb patterning. Using the accessory limb model (ALM), we induced position-specific blastemas lacking cells derived from a single orientation (anterior, posterior, dorsal, or ventral). Patterned limb formation occurred only in blastemas containing both dorsal- and ventral-derived cells. We further observed that Shh expression requires dorsoventral contact within a blastema, highlighting the necessity of dorsoventral contact for inducing Shh expression. In addition, we identified WNT10B and FGF2 as dorsal- and ventral-mediated signals, respectively, that create the inductive environment for Shh expression. Our findings clarify the role of dorsal and ventral cells in inducing Shh, a mechanism that has rarely been studied in the context of limb regeneration and pattern formation. This model provides new insights into how cells with different positional identities drive the regeneration process.

    DOI: 10.7554/elife.106917.2

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    Other Link: https://cdn.elifesciences.org/preprints/106917/elife-preprint-106917-v2.xml

  • Collagen fiber and cellular dynamics of axolotl skin with aging Reviewed

    Chisaki Shima, Ayaka Ohashi, Saya Furukawa, Sakiya Yamamoto, Rena Kashimoto, Akira Satoh

    Development, Growth & Differentiation   2025.3

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    Authorship:Lead author   Publishing type:Research paper (scientific journal)   Publisher:Wiley  

    Abstract

    As skin ages, its structure and function undergo significant transformations driven by complex cellular and molecular processes. In this study, we explore these changes using the axolotl, an amphibian model known for its transparent skin, allowing detailed observation of both epidermal and dermal layers. We found that axolotl skin, composed of an epidermis and a collagen‐rich dermis with three distinct layers (stratum baladachinum, spongiosum, and compactum), shows clear age‐related alterations. These changes include reduced fibroblast numbers, altered lattice‐patterned cell morphology, disruption of the lattice patterned collagen fiber pattern, thickening the stratum spongiosum, and thinning of the stratum compactum. Notably, fibroblasts, which play a crucial role in collagen braiding, displayed diminished functionality in older axolotls. This study highlights how aging affects both the structural integrity of dermal collagen and cellular dynamics. Given the similarity between axolotl and mammalian skin, these findings may provide valuable insights into the mechanisms of skin aging and potential avenues for anti‐aging therapies. This research offers a foundation for future studies aimed at understanding skin aging and regeneration.

    DOI: 10.1111/dgd.70005

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  • Keratinocyte-driven dermal collagen formation in the axolotl skin Reviewed

    Ayaka Ohashi, Hirotaka Sakamoto, Junpei Kuroda, Yohei Kondo, Yasuhiro Kamei, Shigenori Nonaka, Saya Furukawa, Sakiya Yamamoto, Akira Satoh

    Nature Communications   16 ( 1 )   2025.2

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    Authorship:Lead author   Publishing type:Research paper (scientific journal)   Publisher:Springer Science and Business Media LLC  

    DOI: 10.1038/s41467-025-57055-7

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    Other Link: https://www.nature.com/articles/s41467-025-57055-7

  • Allometry in limb regeneration and scale-invariant patterning as the basis of normal morphogenesis from different sizes of blastemas Reviewed

    Saya Furukawa, Sakiya Yamamoto, Ayaka Ohashi, Yoshihiro Morishita, Akira Satoh

    Development   151 ( 21 )   2024.11

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    Publishing type:Research paper (scientific journal)   Publisher:The Company of Biologists  

    ABSTRACT

    Axolotl (Ambystoma mexicanum) limb regeneration begins with blastemas of various sizes, in contrast to the limb developmental process. Despite this size variation, normal limb morphology, consistent with a limb stump size, is regenerated. This outcome suggests the existence of underlying scale-invariant mechanisms. To identify such mechanisms, we examined the allometric relationships between blastema size, and Sonic Hedgehog (Shh) and Fibroblast Growth Factor 8 (Fgf8) expression patterns against limb stump size. We found that all factors showed allometric rather than isometric scaling; specifically, their relative sizes decrease with an increase in limb stump size. However, the ratio of Shh/Fgf8 signaling dominant region was nearly constant, independent of blastema/body size. Furthermore, the relative spatial patterns of cell density and proliferation activity, and the relative position of first digit formation were scale invariant in the summed Shh/Fgf8 crosstalk region. This scale-invariant nature may underlie the morphogenesis of normal limbs from different sizes of blastemas.

    DOI: 10.1242/dev.202697

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    Other Link: https://journals.biologists.com/dev/article-pdf/doi/10.1242/dev.202697/3580509/dev202697.pdf

  • Tenascin-C-enriched regeneration-specific extracellular matrix guarantees superior muscle regeneration in Ambystoma mexicanum. Reviewed International journal

    Ayaka Ohashi, Suzuno Terai, Saya Furukawa, Sakiya Yamamoto, Rena Kashimoto, Akira Satoh

    Developmental biology   504   98 - 112   2023.12

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    Authorship:Lead author   Language:English   Publishing type:Research paper (scientific journal)  

    Severe muscle injury causes distress and difficulty in humans. Studying the high regenerative ability of the axolotls may provide hints for the development of an effective treatment for severe injuries to muscle tissue. Here, we examined the regenerative process in response to a muscle injury in axolotls. We found that axolotls are capable of complete regeneration in response to a partial muscle resection called volumetric muscle loss (VML), which mammals cannot perfectly regenerate. We investigated the mechanisms underlying this high regenerative capacity in response to VML, focusing on the migration of muscle satellite cells and the extracellular matrix (ECM) formed during VML injury. Axolotls form tenascin-C (TN-C)-enriched ECM after VML injury. This TN-C-enriched ECM promotes the satellite cell migration. We confirmed the importance of TN-C in successful axolotl muscle regeneration by creating TN-C mutant animals. Our results suggest that the maintenance of a TN-C-enriched ECM environment after muscle injury promotes the release of muscle satellite cells and supports eventually high muscle regenerative capacity. In the future, better muscle regeneration may be achieved in mammals through the maintenance of TN-C expression.

    DOI: 10.1016/j.ydbio.2023.09.012

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  • FGF signaling induces the regeneration of collagen fiber structure during skin wound healing in axolotls Reviewed International journal

    Rena Kashimoto, Yasuhiro Kamei, Shigenori Nonaka, Yohei Kondo, Sakiya Yamamoto, Saya Furukawa, Ayaka Ohashi, Akira Satoh

    Developmental Biology   498   14 - 25   2023.3

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    Language:English   Publishing type:Research paper (scientific journal)   Publisher:Elsevier BV  

    DOI: 10.1016/j.ydbio.2023.03.007

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  • Lmx1b activation in axolotl limb regeneration. Reviewed International journal

    Sakiya Yamamoto, Rena Kashimoto, Saya Furukawa, Ayaka Ohashi, Akira Satoh

    Developmental dynamics : an official publication of the American Association of Anatomists   251 ( 9 )   1509 - 1523   2022.9

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    Language:English   Publishing type:Research paper (scientific journal)  

    BACKGROUND: Axolotls can regenerate their limbs. In their limb regeneration process, developmental genes are re-expressed and reorganize the developmental axes, in which the position-specific genes are properly re-expressed. However, how such position specificity is reorganized in the regeneration processes has not been clarified. To address this issue, we focused on the reactivation process of Lmx1b, which determines the limb dorsal identity in many animals. RESULTS: Here, we show that Lmx1b expression is maintained in the dorsal skin before amputation and is activated after amputation. Furthermore, we demonstrate that only cells located in the dorsal side prior to limb amputation could reactivate Lmx1b after limb amputation. We also found that Lmx1b activation was achieved by nerve presence. The nerve factors, BMP2+FGF2+FGF8 (B2FF), consistently reactivate Lmx1b when applied to the dorsal skin. CONCLUSIONS: These results imply that the retained Lmx1b expression in the intact skin plays a role in positional memory, which instruct cells about the spatial positioning before amputation. This memory is reactivated by nerves or nerve factors that can trigger the entire limb regeneration process. Our findings highlight the role of nerves in amphibian limb regeneration, including both the initiation of limb regeneration and the reactivation of position-specific gene expression.

    DOI: 10.1002/dvdy.476

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  • An approach for elucidating dermal fibroblast dedifferentiation in amphibian limb regeneration. Reviewed International journal

    Akira Satoh, Rena Kashimoto, Ayaka Ohashi, Saya Furukawa, Sakiya Yamamoto, Takeshi Inoue, Toshinori Hayashi, Kiyokazu Agata

    Zoological letters   8 ( 1 )   6 - 6   2022.4

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    Language:English   Publishing type:Research paper (scientific journal)  

    Urodele amphibians, Pleurodeles waltl and Ambystoma mexicanum, have organ-level regeneration capability, such as limb regeneration. Multipotent cells are induced by an endogenous mechanism in amphibian limb regeneration. It is well known that dermal fibroblasts receive regenerative signals and turn into multipotent cells, called blastema cells. However, the induction mechanism of the blastema cells from matured dermal cells was unknown. We previously found that BMP2, FGF2, and FGF8 (B2FF) could play sufficient roles in blastema induction in urodele amphibians. Here, we show that B2FF treatment can induce dermis-derived cells that can participate in multiple cell lineage in limb regeneration. We first established a newt dermis-derived cell line and confirmed that B2FF treatment on the newt cells provided plasticity in cellular differentiation in limb regeneration. To clarify the factors that can provide the plasticity in differentiation, we performed the interspecies comparative analysis between newt cells and mouse cells and found the Pde4b gene was upregulated by B2FF treatment only in the newt cells. Blocking PDE4B signaling by a chemical PDE4 inhibitor suppressed dermis-to-cartilage transformation and the mosaic knockout animals showed consistent results. Our results are a valuable insight into how dermal fibroblasts acquire multipotency during the early phase of limb regeneration via an endogenous program in amphibian limb regeneration.

    DOI: 10.1186/s40851-022-00190-6

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  • Axolotl liver regeneration is accomplished via compensatory congestion mechanisms regulated by ERK signaling after partial hepatectomy. Reviewed International journal

    Ayaka Ohashi, Nanami Saito, Rena Kashimoto, Saya Furukawa, Sakiya Yamamoto, Akira Satoh

    Developmental dynamics : an official publication of the American Association of Anatomists   250 ( 6 )   838 - 851   2021.6

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    Authorship:Lead author   Language:English   Publishing type:Research paper (scientific journal)  

    BACKGROUND: Axolotls have remarkable organ-level regeneration capability. They can regenerate their limbs, tail, brain, gills, and heart. The liver had been considered to be a regenerative organ in these highly regeneration-competent animals. Therefore, no research had been performed on liver regeneration in urodele amphibians. In the present study, we focused on axolotl liver regeneration and found a unique regeneration mechanism compared with other vertebrates. RESULTS: Partial hepatectomy (PH) was performed to assess axolotl liver regeneration. Regeneration was assessed using block-face imaging (CoMBi), histology, cell proliferation, weight gain, and Albumin (Alb) + area. Axolotl liver histology was compared with other vertebrates. Axolotl liver consists of Glisson's capsule, sinusoids, and hepatic cord with no apparent lobule structures. Hepatocytes were mononucleated or multinucleated. PH increased the multinucleated hepatocytes and the Alb + area, but there was no apparent liver shape recovery even 40 days after PH. Gene expression pattern suggests that no epimorphic regeneration takes place. We also found that the increase in the number of proliferating hepatocytes was regulated by ERK-signaling. CONCLUSION: Our findings suggest that axolotls, which have epimorphic regeneration ability, regenerate their liver via unique mechanisms, compensatory congestion.

    DOI: 10.1002/dvdy.262

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Books

  • 科学

    大蘆彩夏, 佐藤伸( Role: Joint author ,  永遠のたまご肌!? ウーパールーパーの皮膚の秘密を解き明かす)

    岩波書店  2025.8 

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Presentations

  • Tenascin-C-enriched regeneration-specific extracellular matrix guarantees superior muscle regeneration in Ambystoma mexicanum Invited

    Ayaka Ohashi, Akira Satoh

    EMBO COB Workshop 'Trans-Scale Biology' using exotic non-model organisms,  2023.7.25 

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    Event date: 2023.7.25 - 2023.7.27

    Presentation type:Oral presentation (invited, special)  

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  • 皮膚真皮I型コラーゲン再生機構の解明 Invited

    日本動物学会第97回札幌大会  2026.9.4 

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  • Elucidating the formation of dermal collagen structures in axolotls for complete skin regeneration

    Ayaka Ohashi, Akira Satoh

    2025.9.3 

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  • Keratinocyte-driven dermal collagen formation in the axolotl skin

    Ayaka Ohashi, Akira Satoh

    International Society of Regenerative Biology  2025.8.15 

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  • Keratinocyte-driven dermal collagen formation in the axolotl skin

    2025.6.8 

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  • 表皮ケラチノサイトによる真皮コラーゲン構造形成

    大蘆彩夏, 坂本浩隆, 黒田純平, 近藤洋平, 亀井保博, 野中茂紀, 佐藤伸

    日本動物学会  2024.9.14 

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  • Keratinocytes driven dermal collagen formation in axolotl skin

    2024 Salamander meeting  2024.8 

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  • アホロートルの優れた筋再生能力と細胞外マトリックスの役割

    大蘆彩夏, 佐藤伸

    第46回分子生物学会  2023.12.8 

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  • アホロートルの表皮細胞が作る真皮コラーゲン構造構築法の解明

    大蘆彩夏, 黒田純平, 佐藤伸

    第46回分子生物学会  2023.12.7 

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  • Tenascin-C-enriched regeneration-specific extracellular matrix guarantees superior muscle regeneration in Ambystoma mexicanum

    Ayaka Ohashi, Akira Satoh

    International Society for Regenerative Biology  2023.9.4 

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  • Tenascin-C-enriched regeneration-specific extracellular matrix guarantees superior muscle regeneration in Ambystoma mexicanum

    Ayaka Ohashi, Akira Satoh

    2023.7.24 

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  • アホロートルの優れた筋再生機構とECMの役割

    大蘆彩夏, 佐藤伸

    日本動物学会早稲田大会  2022.9.8 

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  • Axolotl liver regeneration is accomplished via compensatory congestion mechanisms regulated by ERK signaling after partial hepatectomy

    Ayaka Ohashi, Nanami Saito, Akira Satoh

    JSDB online trial meeting 2020  2020.9.20 

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  • メキシコサラマンダー肝再生における細胞分裂制御

    大蘆彩夏, 齋藤奈波, 佐藤伸

    オンライン日本動物学会第91回大会  2020.8.5 

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Awards

  • ロレアルーユネスコ女性科学者日本奨励賞

    2026.9  

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  • 仁科賞

    2026.3   岡山県  

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  • 育志賞

    2026.2   日本学術振興会  

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  • MBSJ Poster Award 2025

    2025.12   日本分子生物学会  

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  • Student Poster Award

    2025.9   International Symposium on Multimodal ECM  

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  • Young Investigator Award

    2025.6  

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  • 岡山大学大学院環境生命自然科学研究科長賞

    2025.3   岡山大学大学院  

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  • Kanemitu Award

    2024.4  

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  • International Society for Regenerative Biology Travel Award

    2023.9   Tenascin-C-enriched regeneration-specific extracellular matrix guarantees superior muscle regeneration in Ambystoma mexicanum

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  • Kawaguchi Award for International Conference Presentation Support

    2023.3   Tenascin-C-enriched regeneration-specific extracellular matrix guarantees superior muscle regeneration in Ambystoma mexicanum

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  • 学生研究奨励賞

    2021.3   中原教育研究基金  

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Research Projects

  • ヒト表皮細胞におけるI型コラーゲン産生誘導因子の探索

    2026.09 - 2028.05

    木下基礎科学研究基金 

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    Authorship:Principal investigator 

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  • 表皮細胞由来I型コラーゲンが基底膜を通過するプロセスの解明

    2026.09 - 2027.03

    研究活動スタート支援 

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    Authorship:Principal investigator 

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  • アホロートル再生四肢における老化状態の解析

    2026.04 - 2027.02

    公益財団法人日本科学協会  笹川科学研究助成 

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    Authorship:Principal investigator 

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  • 表皮細胞におけるコラーゲン産生を促す分子機構の解明

    2025.04 - 2027.03

    日本学術振興会  特別研究員奨励費 

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    Authorship:Principal investigator 

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  • Tenascin-C(TNC)による筋組織における線維化抑制機構の解明

    2024.04 - 2025.03

    JST  OU-SPRING 

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  • アホロートル筋再生におけるTenascin-Cの分子メカニズムの解明

    2023.09

    ANRI基礎科学スカラーシップ 

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    Authorship:Principal investigator 

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Social Activities

  • アホロートル皮膚コラーゲン構造の形成と再生

    Role(s):Lecturer

    岡山県立林野高校 

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    Type:Visiting lecture

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Media Coverage

  • ウーパールーパーの皮膚研究で育志賞を受賞 Internet

    月刊高専  2026.5

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  • ウーパールーパーが教える美肌の秘密 きれいは内側でなく外側から? Newspaper, magazine

    朝日新聞  2026.5

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