[1]

Sakers A, De Siqueira MK, Seale P, Villanueva CJ. 2022. Adipose-tissue plasticity in health and disease. Cell 185(3):419−446

doi: 10.1016/j.cell.2021.12.016
[2]

Chait A, den Hartigh LJ. 2020. Adipose tissue distribution, inflammation and its metabolic consequences, including diabetes and cardiovascular disease. Frontiers in Cardiovascular Medicine 7:22

doi: 10.3389/fcvm.2020.00022
[3]

Contessi Negrini N, Pellegrinelli V, Salem V, Celiz A, Vidal-Puig A. 2025. Breaking barriers in obesity research: 3D models of dysfunctional adipose tissue. Trends in Biotechnology 43(5):1079−1093

doi: 10.1016/j.tibtech.2024.09.017
[4]

Rybkowska P, Radoszkiewicz K, Kawalec M, Dymkowska D, Zabłocka B, et al. 2023. The metabolic changes between monolayer (2D) and three-dimensional (3D) culture conditions in human mesenchymal stem/stromal cells derived from adipose tissue. Cells 12(1):178

doi: 10.3390/cells12010178
[5]

Börgeson E, Boucher J, Hagberg CE. 2022. Of mice and men: pinpointing species differences in adipose tissue biology. Frontiers in Cell and Developmental Biology 10:1003118

doi: 10.3389/fcell.2022.1003118
[6]

Gibler P, Gimble J, Hamel K, Rogers E, Henderson M, et al. 2021. Human adipose-derived stromal/stem cell culture and analysis methods for adipose tissue modeling in vitro: a systematic review. Cells 10(6):1378

doi: 10.3390/cells10061378
[7]

Emont MP, Jacobs C, Essene AL, Pant D, Tenen D, et al. 2022. A single-cell atlas of human and mouse white adipose tissue. Nature 603(7903):926−933

doi: 10.1038/s41586-022-04518-2
[8]

Ma Y, Deng B, He R, Huang P. 2024. Advancements of 3D bioprinting in regenerative medicine: exploring cell sources for organ fabrication. Heliyon 10(3):e24593

doi: 10.1016/j.heliyon.2024.e24593
[9]

Öztürk-Öncel MÖ, Leal-Martínez BH, Monteiro RF, Gomes ME, Domingues RMA. 2023. A dive into the bath: embedded 3D bioprinting of freeform in vitro models. Biomaterials Science 11(16):5462−5473

doi: 10.1039/d3bm00626c
[10]

Louis F, Piantino M, Liu H, Kang DH, Sowa Y, et al. 2021. Bioprinted vascularized mature adipose tissue with collagen microfibers for soft tissue regeneration. Cyborg and Bionic Systems 2021:1412542

doi: 10.34133/2021/1412542
[11]

Albrecht FB, Schmidt FF, Volz AC, Kluger PJ. 2022. Bioprinting of 3D adipose tissue models using a GelMA-bioink with human mature adipocytes or human adipose-derived stem cells. Gels 8(10):611

doi: 10.3390/gels8100611
[12]

Qureshi MA, Basree, Aziz R, Azim Y, Ahmad M. 2025. Polymeric hydrogels for bioprinting: a comprehensive review. Annals of 3D Printed Medicine 18:100198

doi: 10.1016/j.stlm.2025.100198
[13]

Füge L, Schüssler F, Gerhardus J, Schwab R, Harms G, et al. 2025. Comparative analysis of hydrogels from porcine extracellular matrix for 3D bioprinting of adipose tissue. Journal of Biomedical Materials Research Part A 113(4):e37832

doi: 10.1002/jbm.a.37832
[14]

Albrecht FB, Dolderer V, Nellinger S, Schmidt FF, Kluger PJ. 2022. Gellan gum is a suitable biomaterial for manual and bioprinted setup of long-term stable, functional 3D-adipose tissue models. Gels 8(7):420

doi: 10.3390/gels8070420
[15]

Nowakowski S, Nellinger S, Albrecht FB, Kluger PJ. 2025. Animal-free setup of a 3D mature adipocyte-macrophage co-culture to induce inflammation in vitro. Advanced Healthcare Materials 14(22):2500779

doi: 10.1002/adhm.202500779
[16]

Huber B, Borchers K, Tovar GE, Kluger PJ. 2016. Methacrylated gelatin and mature adipocytes are promising components for adipose tissue engineering. Journal of Biomaterials Applications 30(6):699−710

doi: 10.1177/0885328215587450
[17]

Chrenek J, Kirsch R, Scheck K, Willerth SM. 2022. Protocol for printing 3D neural tissues using the BIO X equipped with a pneumatic printhead. STAR Protocols 3(2):101348

doi: 10.1016/j.xpro.2022.101348
[18]

Cai B, Kilian D, Ramos Mejia D, Rios RJ, Ali A, et al. 2024. Diffusion-based 3D bioprinting strategies. Advanced Science 11(8):2306470

doi: 10.1002/advs.202306470
[19]

Morris ER, Nishinari K, Rinaudo M. 2012. Gelation of gellan – a review. Food Hydrocolloids 28(2):373−411

doi: 10.1016/j.foodhyd.2012.01.004
[20]

McCormack A, Highley CB, Leslie NR, Melchels FPW. 2020. 3D printing in suspension baths: keeping the promises of bioprinting afloat. Trends in Biotechnology 38(6):584−593

doi: 10.1016/j.tibtech.2019.12.020
[21]

Wu Q, Song K, Zhang D, Ren B, Sole-Gras M, et al. 2022. Embedded extrusion printing in yield-stress-fluid baths. Matter 5(11):3775−3806

doi: 10.1016/j.matt.2022.09.003
[22]

Ding H, Chang RC. 2018. Printability study of bioprinted tubular structures using liquid hydrogel precursors in a support bath. Applied Sciences 8(3):403

doi: 10.3390/app8030403
[23]

Jeong W, Son J, Choi J, Han J, Jeon S, et al. 2025. Clinically relevant and precisely printable live adipose tissue–based bio-ink for volumetric soft tissue reconstruction. Advanced Healthcare Materials 14:2402680

doi: 10.1002/adhm.202402680
[24]

Chen Y, Liu Y, Zhang J, Liu H, Wang J, et al. 2021. Three-dimensional bioprinting adipose tissue and mammary organoids feasible for artificial breast structure regeneration. Materials & Design 200:109467

doi: 10.1016/j.matdes.2021.109467
[25]

Pati F, Ha DH, Jang J, Han HH, Rhie JW, et al. 2015. Biomimetic 3D tissue printing for soft tissue regeneration. Biomaterials 62:164−175

doi: 10.1016/j.biomaterials.2015.05.043
[26]

Hinton TJ, Jallerat Q, Palchesko RN, Park JH, Grodzicki MS, et al. 2015. Three-dimensional printing of complex biological structures by freeform reversible embedding of suspended hydrogels. Science Advances 1(9):e1500758

doi: 10.1126/sciadv.1500758
[27]

Brunel LG, Christakopoulos F, Kilian D, Cai B, Hull SM, et al. 2024. Embedded 3D bioprinting of collagen inks into microgel baths to control hydrogel microstructure and cell spreading. Advanced Healthcare Materials 13(25):2303325

doi: 10.1002/adhm.202303325
[28]

Skylar-Scott MA, Uzel SGM, Nam LL, Ahrens JH, Truby RL, et al. 2019. Biomanufacturing of organ-specific tissues with high cellular density and embedded vascular channels. Science Advances 5(9):eaaw2459

doi: 10.1126/sciadv.aaw2459
[29]

Petretta M, Villata S, Scozzaro MP, Roseti L, Favero M, et al. 2023. In vitro synovial membrane 3D model developed by volumetric extrusion bioprinting. Applied Sciences 13(3):1889

doi: 10.3390/app13031889
[30]

Chandrasekaran P, Weiskirchen S, Weiskirchen R. 2024. Perilipins: a family of five fat-droplet storing proteins that play a significant role in fat homeostasis. Journal of Cellular Biochemistry 125(6):e30579

doi: 10.1002/jcb.30579
[31]

Yang A, Mottillo EP. 2020. Adipocyte lipolysis: from molecular mechanisms of regulation to disease and therapeutics. Biochemical Journal 477(5):985−1008

doi: 10.1042/bcj20190468
[32]

Acosta FM, Stojkova K, Zhang J, Garcia Huitron EI, Jiang JX, et al. 2022. Engineering functional vascularized beige adipose tissue from microvascular fragments of models of healthy and type II diabetes conditions. Journal of Tissue Engineering 13:20417314221109337

doi: 10.1177/20417314221109337
[33]

Luo T, Chen L, Tu K, et al. 2025. Adipose tissue-targeted drug delivery for treating obesity: current opportunities and challenges. Drug Delivery 32:2547751

doi: 10.1080/10717544.2025.2547751
[34]

Struss M, Bellas E. 2024. Microphysiological modeling of vascular adipose tissue for multi-throughput applications. bioRxiv 578061

doi: 10.1101/2024.01.30.578061
[35]

Liu S, Wang L, Ling D, Valencak TG, You W, et al. 2022. Potential key factors involved in regulating adipocyte dedifferentiation. Journal of Cellular Physiology 237(3):1639−1647

doi: 10.1002/jcp.30637
[36]

Zhou H, Zhou D, Wu M, Huang Y, Yu E, et al. 2026. Mechanical interplay between adipose tissues and disease progression. Bioengineering & Translational Medicine 11(2):e70065

doi: 10.1002/btm2.70065
[37]

Säljö K, Orrhult LS, Apelgren P, Markstedt K, Kölby L, et al. 2020. Successful engraftment, vascularization, and in vivo survival of 3D-bioprinted human lipoaspirate-derived adipose tissue. Bioprinting 17:e00065

doi: 10.1016/j.bprint.2019.e00065
[38]

Hedemann N, Thomas A, Tribian N, Amler AK, Krüger S, et al. 2025. Light-based multi-material bioprinting of vascularised adipose tissue for breast fatty tissue engineering. Biofabrication 17(2):025034

doi: 10.1088/1758-5090/adb890
[39]

Mohamed HJ, Jeong W, Son J, Kang HW. 2025. Bioprinting of adipose tissue graft with enhanced neo-vessel formation in vivo. Advanced Healthcare Materials 14(21):2500627

doi: 10.1002/adhm.202500627
[40]

Goldfracht I, Machour M, Michael I, Bulatova M, Zavin J, et al. 2025. 3D bioprinting of thick adipose tissues with integrated vascular hierarchies. Advanced Functional Materials 35(12):2410311

doi: 10.1002/adfm.202410311
[41]

Ahn M, Cho WW, Kim BS, Cho DW. 2022. Engineering densely packed adipose tissue via environmentally controlled in-bath 3D bioprinting. Advanced Functional Materials 32(28):2200203

doi: 10.1002/adfm.202200203