Cell Models for Tissue and Organ Research

POSTED ON May 12, 2026

Cell Models for Tissue Biology and Organ-specific Biology

Cell models are widely used to study tissue biology and organ-specific functions under controlled in vitro conditions. Because tissues and organs are composed of specialized cell populations, carefully selected human cell models and animal cell models can help researchers investigate key biological processes such as barrier formation, metabolism, secretion, inflammation, cell signaling, and disease progression.

Different cell types can be used to represent selected features of their source tissues. For example, lung alveolar cells are useful for studying respiratory epithelial function and air–liquid interface models, while keratinocytes support research on skin biology and epidermal barrier formation. Oral gingival cells, human prostate cell models, thyroid cells, and endometriotic cells may also serve as tissue- or disease-relevant models for oral, endocrine, reproductive, and organ-specific research. Although cell models cannot fully reproduce the complexity of intact tissues or organs, they provide practical systems for mechanistic studies, drug screening, toxicity testing, and translational research.

Epithelial Cell Models

Epithelial cells form protective and functional surfaces in many tissues and organs, including the skin, lung, intestine, kidney, oral mucosa, glands, and eye. As in vitro cell models, epithelial cells are widely used to study barrier formation, polarity, transport, secretion, wound repair, host–pathogen interaction, and tissue-specific disease mechanisms. Common epithelial cell models include keratinocytes for epidermal research, airway and alveolar epithelial cells for respiratory studies, intestinal epithelial cells for absorption and barrier assays, and renal epithelial cells for kidney-related research. RPE cells, or retinal pigment epithelial cells, are specialized epithelial cells of the retinal pigment epithelium and are often used in vision and retinal disease studies. Specific epithelial cell lines such as RPE-1 cells may also support cell biology, ciliogenesis, and genome-editing research.

Alveolar Epithelial CellsCat. No.Gingival Epithelial CellsCat. No.
Human Type II Alveolar Epithelial CellsARP1007Rat Gingival Epithelial CellsARP0401
Human Type I Alveolar Epithelial CellsARP1173Mouse Gingival Epithelial CellsARP0645
Rat Type II Alveolar Epithelial CellsARP0179Rabbit Gingival Epithelial CellsARP0888
Mouse Type II Alveolar Epithelial CellsARP0420
Rabbit Type II Alveolar Epithelial CellsARP0665Renal Epithelial CellsCat. No.
Pig Type II Alveolar Epithelial CellsARP0913Human Renal Epithelial CellsARP0152
Sheep Type II Alveolar Epithelial CellsARP0948Rat Renal Epithelial CellsARP0268
Canine Alveolar Epithelial CellsARP1196Mouse Renal Epithelial CellsARP0511
Rabbit Renal Epithelial CellsARP0754
Retinal Pigment Epithelial CellsCat. No.
Human Retinal Pigment Epithelial CellsARP0115
Rat Retinal Pigment Epithelial CellsARP0387
Mouse Retinal Pigment Epithelial CellsARP0631
Rabbit Retinal Pigment Epithelial CellsARP0874
Pig Retinal Pigment Epithelial CellsARP0927

Endothelial Cell Models

Endothelial cells line the inner surface of blood vessels, lymphatic vessels, and the heart, forming a specialized interface between circulating fluids and surrounding tissues. Although endothelium is sometimes described in histology as a specialized simple squamous epithelium, endothelial cells are usually treated as a separate major cell type in cell biology and biomedical research because of their distinct vascular functions, markers, and applications.

As cell models for vascular and organ-specific research, endothelial cells are widely used to study angiogenesis, vascular permeability, inflammation, leukocyte adhesion, coagulation-related responses, and blood–tissue barrier function. Common models include vascular endothelial cells, microvascular endothelial cells, lymphatic endothelial cells, and organ-specific endothelial cells from tissues such as lung, brain, heart, liver, kidney, and skin. These human endothelial cell models and animal-derived endothelial cells provide practical systems for studying vascular biology, disease mechanisms, drug response, and tissue microenvironment interactions in vitro.

Endothelial CellsCat. No.
Human Adipose Microvascular Endothelial CellsARP0013
Human Retinal Microvascular Endothelial CellsARP1134
Human Colonic Microvascular Endothelial CellsARP0051
Human Brain Microvascular Endothelial CellsARP0085
Human Intestinal Microvascular Endothelial CellsARP0048
Human Lymphatic Endothelial CellsARP0071

Fibroblast Cell Models

Fibroblasts are major stromal cells found in connective tissues throughout the body. As fibroblast cell models, they are widely used to study extracellular matrix production, tissue remodeling, wound healing, inflammation, fibrosis, and cell–matrix interactions. Because fibroblasts help maintain tissue structure and support local microenvironments, they are important models for understanding how tissues respond to injury, disease, and therapeutic treatment.

Different fibroblast types can represent specific tissue contexts. Skin fibroblasts and dermal fibroblasts are commonly used to study fibroblasts in skin repair, aging, scar formation, and cutaneous wound healing. Other primary fibroblasts, such as lung fibroblasts, cardiac fibroblasts, gingival fibroblasts, synovial fibroblasts, and cancer-associated fibroblasts, support research in organ fibrosis, inflammatory disease, tumor microenvironment biology, and connective tissue disorders. Human fibroblast models and animal-derived fibroblasts provide practical in vitro systems for evaluating tissue repair, matrix regulation, drug response, and disease-associated stromal changes.

Lung FibroblastsCat. No.
Human Pulmonary Artery Adventitial FibroblastsARP0135
Human Pulmonary FibroblastsARP0143
Human Pulmonary Fibroblasts – adultARP0144
Human Bronchial FibroblastsARP0147
Human Tracheal FibroblastsARP0148
Rat Pulmonary Artery Adventitial FibroblastsARP0178
Rat Pulmonary FibroblastsARP0184
Rat Pulmonary MyofibroblastsARP0188
Mouse Pulmonary Artery Adventitial FibroblastsARP0419
Mouse Pulmonary FibroblastsARP0425
Mouse Pulmonary MyofibroblastsARP0430
Rabbit Pulmonary FibroblastsARP0670
Rabbit Pulmonary Artery Adventitial FibroblastsARP0673
Rabbit Pulmonary MyofibroblastsARP0675
Pig Pulmonary FibroblastsARP0923
Sheep Pulmonary FibroblastsARP0945
Human Parenchymal FibroblastARP1035
Human Lung Parenchymal Fibroblasts (COPD)ARP1168
Human Lung Parenchymal Fibroblasts (DF508/DF508 Cystic Fibrosis)ARP1169
Human Lung Parenchymal Fibroblasts (Idiopathic Pulmonary Fibrosis)ARP1170
Human Lung Parenchymal Fibroblasts (Pulmonary Arterial Hypertension, PAH)ARP1171
Human Lung Parenchymal Fibroblasts (Pulmonary Fibrosis)ARP1172
Cardiac FibroblastsCat. No.
Human Cardiac FibroblastsARP0024
Human Pericardial FibroblastsARP0025
Rat Cardiac FibroblastsARP0191
Mouse Cardiac FibroblastsARP0434
Rabbit Cardiac FibroblastsARP0679
Pig Cardiac FibroblastsARP0909

Ascent Research also supports some fibroblast cell lines as follow.

Fibroblast Cell LineCat. No.Synonyms
Hs 865.SkARC0319
KMM-M1ARP1003MUS-M1
CYNOM-K1ARP1010Cynom-K1; CYNOMK-1; CYNOMK1; CYNOM-1
CCC-ESF-1ARP0989
Hs 815.PlARP0997
HFF-1ARP0994HFF1
BJARP0988FF-WT-BJ; BJ1
IMR-90ARP1001IMR 90; IMR90; I90
MRC-5ARP1002MRC5; MRC 5; MRCV; MRC-V
WI-38ARP1004Wi-38; WI 38; WI38; AG06814E; AG06814G; AG06814H; AG06814-J; AG06814J; AG06814-M; AG06814-N
CCC-HPF-1ARP0990
CCD-18CoARP0991CCD18Co; CCD18
CCD-1095SkARC0122CCD1095Sk
Hs 68ARP1005HS 68; HS-68; Hs68
3T3-Swiss albinoARI02403T3 Swiss Albino; 3T3; Swiss-3T3; Swiss 3T3; Swiss3T3
3T3-L1ARI00023T3 L1; 3T3L1; 3T3-L1 ad; NIH-3T3-L1; NIH3T3-L1
C3H/10T1/2 clone 8ARI0024C3H/10T1/2-clone8; C3H/10T1/2 CL8; C3H10T1/2 clone8; C3H10T1/2CL8; 10T1/2(clone8); 10T1/2; C3H10T1-2; C3H10T1/2; C3H-10T1/2; C3H 10T1/2; C3H/10T1/2
NIH 3T3ARI0091NIH/3T3; NIH-3T3; NIH3T3; 3T3; 3T3NIH; 3T3-Swiss; Swiss-3T3; Swiss/3T3; Swiss 3T3; Swiss3T3
A7R5ARI0004A7R5
BRL-3AARI0019BRL3A; BRL 3A; Buffalo Rat Liver-3A
BALB/3T3 clone A31ARI0013BALB/c 3T3 clone A31; Balb/c3T3; BALB/c 3T3; Balb/c 3T3; BALB/3T3; Balb/3T3-4-Cl31; 3T3 clone A31; BALB/3T3 cl. A31; BALB 3T3 clone A31; BALB/3T3 (clone A31); B/C3T3; 3T3-A31; 3T3(A31); A31; A31N
STOARI0106
NCTC clone 929ARI0090NCTC 929; NCTC-929; NCTC929; NCTC-929L; L cell; L cells; L-cell; L-cells; L cell line; L; Strain L-929; L-929; L 929; L929; L929(NCTC); Clone 929
L Wnt-3AARI0070L-Wnt-3A; L-Wnt3A; LWnt3A; LWnt-3A
L-WRNARI0073
PT67ARI0099RetroPack PT67; PT-67
MH7AARI0079
WI-38 VA13 subline 2RAARI0116WI 38 VA13 subline 2RA; WI 38 VA-13 subline 2RA; WI 38VA13 subline 2RA; WI-38 VA13 sub 2 RA; WI38-VA13 subline 2RA; WI38 VA13/2RA; WI38VA13/2RA; VA13 2RA; WI-38 VA13; WI 38 VA 13; WI38-VA13; WI38/VA13; WI38VA13; VA-13; VA13; AG07217; AG7217

Neural Cell Models

Neurons and glial cells are often grouped together as neural cell models because they represent the major functional cells in the brain, spinal cord, and peripheral nervous system. Neurons are specialized for electrical and chemical signaling, while glial cells support and regulate neuronal survival, synaptic activity, homeostasis, myelination, immune response, and tissue repair. Together, these brain cell models provide practical systems for studying neuronal function, neuroinflammation, neurodegeneration, neural development, and nervous system disease mechanisms.

Common neural cell types include neurons, astrocytes, microglia, oligodendrocytes, and Schwann cells. Cortical neurons and other neuronal cell models are widely used to study synaptic signaling, excitability, neurotoxicity, and disease-associated neuronal injury. Astrocytes help regulate the extracellular environment and support neuronal activity, while microglia serve as resident immune cells involved in inflammation and repair. Oligodendrocytes and Schwann cells are important for myelination in the central and peripheral nervous systems, respectively. Human neural cell models and animal-derived neural cells support in vitro studies of brain biology, drug response, toxicity testing, and neuron–glia interactions.

NeuronsCat. No.AstrocytesCat. No.
Human NeuronsARP0096Human AstrocytesARP0105
Human Neurons – midbrainARP0097Human Astrocytes – brain stemARP0106
Human Neurons – brain stemARP0098Human Astrocytes – midbrainARP0107
Human Hippocampal NeuronsARP0100Human Cerebellar AstrocytesARP0108
Rat Cerebral Cortical NeuronsARP0365Human Spinal Cord AstrocytesARP0109
Rat Hippocampal NeuronsARP0366Human Hippocampal AstrocytesARP0110
Rat Spinal Cord NeuronsARP0367Human Retinal AstrocytesARP0111
Rat Dorsal Root Ganglion (DRG) NeuronsARP0374Rat AstrocytesARP0369
Rat Hypothalamic NeuronsARP0376Rat Trigeminal AstrocytesARP0378
Rat Trigeminal NeuronsARP0377Rat Spinal Cord AstrocytesARP0380
Rat Amygdala NeuronsARP0383Mouse AstrocytesARP0613
Rat Olfactory Bulb NeuronsARP0384Mouse Trigeminal AstrocytesARP0621
Mouse Cerebral Cortical NeuronsARP0609Mouse Spinal Cord AstrocytesARP0624
Mouse Hippocampal NeuronsARP0610Rabbit AstrocytesARP0856
Mouse Spinal Cord NeuronsARP0611Rabbit Trigeminal AstrocytesARP0864
Mouse Hypothalamic NeuronsARP0618Rabbit Spinal Cord AstrocytesARP0867
Mouse Trigeminal NeuronsARP0620Human Astrocytes (Fetal)ARP1120
Mouse Dorsal Root Ganglion (DRG) NeuronsARP0622Rat Brain Cortex Astrocytes from Wistar RatARP1202
Mouse Amygdala NeuronsARP0627Rat Brain Cortex Astrocytes from Fischer 344 (F344) RatARP1203
Mouse Olfactory Bulb NeuronsARP0628Rat Brain Cortex Astrocytes from Sprague-Dawley RatARP1204
Rabbit Cerebral Cortical NeuronsARP0852
Rabbit Hippocampal NeuronsARP0853MicrogliaCat. No.
Rabbit Spinal Cord NeuronsARP0854Human MicrogliaARP0112
Rabbit Hypothalamic NeuronsARP0858Rat MicrogliaARP0370
Rabbit Trigeminal NeuronsARP0863Rat Retinal MicrogliaARP0410
Rabbit Dorsal Root Ganglion (DRG) NeuronsARP0865Mouse MicrogliaARP0614
Rabbit Amygdala NeuronsARP0870Mouse Retinal MicrogliaARP0652
Rabbit Olfactory Bulb NeuronsARP0871Rabbit MicrogliaARP0857
Rabbit Retinal MicrogliaARP0897
Schwann CellsCat. No.
Human Schwann CellsARP0103OligodendrocytesCat. No.
Rat Schwann CellsARP0368Rat OligodendrocytesARP0373
Mouse Schwann CellsARP0612Mouse OligodendrocytesARP0619
Rabbit Schwann CellsARP0855Rabbit OligodendrocytesARP0862

Myosatellite Cell Models

Myosatellite cells, also known as satellite cells, are muscle stem/progenitor cells located between the basal lamina and muscle fiber membrane. They play an essential role in skeletal muscle growth, repair, and regeneration after injury. As in vitro cell models, myosatellite cells are useful for studying muscle development, myogenic differentiation, tissue repair, aging-related muscle decline, and muscle disease mechanisms. Human and animal-derived satellite cells can support research on skeletal muscle biology, regeneration, drug response, and cell–matrix interactions.

Myosatellite CellsCat. No.
Human Skeletal Muscle Satellite CellsARP0161
Bovine Skeletal Muscle Satellite CellsARP1006
Chicken Skeletal Muscle Satellite CellsARP1008
Pig Skeletal Muscle Satellite CellsARP1009

Immune Cell Models

Immune cells, also known as white blood cells, are essential components of the immune system and are widely used as cell models for studying inflammation, infection, cancer immunology, autoimmune disease, and immune regulation. Many immune system cells originate from hematopoietic stem and progenitor cells in the bone marrow and develop into specialized populations with distinct functions.

Common immune cell models include T cells and B cells, monocytes, macrophages, dendritic cells, neutrophils, natural killer cells, and other leukocyte populations. T cells are important for cell-mediated immunity and immune surveillance, while B cells support antibody production and humoral immune responses. Monocytes and macrophages are frequently used to study innate immune activation, cytokine release, phagocytosis, and inflammatory signaling. These immune cell models provide practical systems for evaluating immune responses, drug effects, cell-cell interactions, and disease-associated immune mechanisms in vitro.

MonocytesCat. No.T CellsCat. No.
Rat MonocytesARP0346Human CD3+ T CellsARP1015
Rat Bone Marrow MonocytesARP0355Human CD4+ T CellsARP1017
Mouse MonocytesARP0590Human CD4+/CD45RA+/CD25- Naive T CellsARP1019
Mouse Bone Marrow MonocytesARP0599Human CD8+ T CellsARP1023
Rabbit MonocytesARP0833Human CD8+/CD45RO+ Memory Cytotoxic T CellsARP1025
Rabbit Bone Marrow MonocytesARP0842Cynomolgus Monkey CD3+ T CellsARP1041
Cynomolgus Monkey CD14+ MonocytesARP1043Rhesus Monkey CD3+ T CellsARP1050
Beagle CD14+ MonocytesARP1075Sprague Dawley Rat CD3+ T CellsARP1065
Human CD14+ MonocytesARP1097Beagle CD3+ T CellsARP1074
Human CD4+ Helper T Cells (Peripheral Blood)ARP1100
B CellsCat. No.Human CD8+ Cytotoxic Killer T CellsARP1102
Human CD19+ B CellsARP1027Rat T LymphocytesARP0345
Cynomolgus Monkey CD20+ B CellsARP1046Mouse T LymphocytesARP0589
Rhesus Monkey CD20+ B CellsARP1051Rabbit T LymphocytesARP0832
Rat B LymphocytesARP0344
Mouse B LymphocytesARP0588
Rabbit B LymphocytesARP0831
Pig B LymphocytesARP0932

Pancreatic Islet Cell Models

Pancreatic islet cells are endocrine cells located within the pancreatic islets, also known as the islets of Langerhans. These specialized islet cells of the pancreas include insulin-producing beta cells, glucagon-producing alpha cells, and other hormone-secreting cell types involved in glucose homeostasis. As cell models, pancreatic islet cells are valuable for studying endocrine pancreas function, insulin secretion, diabetes mechanisms, metabolic regulation, drug response, and islet cell dysfunction. Human and animal-derived islet cell models support in vitro research on pancreatic biology and metabolic disease.

Pancreatic Islet CellsCat. No.
Human Pancreatic IsletsARP1176
Rat Islet CellsARP0274
Mouse Islet CellsARP0518
Rabbit Islet CellsARP0760

Immortalized Cell Models

Immortalized cells are cell models derived from primary cells that have acquired extended proliferative capacity through spontaneous or engineered immortalization. Compared with primary cells, immortalized cell lines are easier to expand, maintain, and standardize across experiments, while still retaining selected features of their original tissue or cell type. These models are widely used for cell biology, disease research, gene function studies, drug screening, and assay development. However, because immortalization can alter growth behavior, signaling, and phenotype, results should be interpreted according to the cell line background and experimental purpose.

Immortalized CellsCat. No.Cell TypeSynonyms
AML-12ARI0006Mouse hepatocytesAML-12; AML 12; Alpha Mouse Liver 12
ARPE-19ARI0009Retinal pigment epithelial cellsARPE19; Adult Retinal Pigment Epithelial cell line-19; NTC-200; NTC200
bEnd.3ARI0014Mouse brain endothelial cellsbEND.3; b.End3; Bend.3; bEnd3; BEND-3; BEND3; brain-derived Endothelial cells.3
BHK-21ARI0239Hamster kidney fibroblastsBHK 21; BHK21; Baby Hamster Kidney-21; Baby Hamster Kidney 21; Baby Hamster Kidney from litter No. 21; BHK
BJARP0988Human foreskin fibroblastsFF-WT-BJ; BJ1
C2C12ARI0023Mouse myoblastsC2c12; C2-C12; C12
COS-7ARI0029Monkey kidney fibroblast-like cells (SV40-transformed)Cos-7; COS 7; Cos 7; COS7; Cos7; CV-1 in Origin Simian-7
EA.hy926ARI0221Endothelial cellsEA. hy 926; EA hy 926; EA-hy926; EAhy 926; EAHY-926; EA.Hy926; EA.hy926; EAhy926; EaHy926; Eahy926
H9c2(2-1)ARI0043Rat cardiomyoblastsH9c2 (2-1); H9c2; H9C2
HEK293TARI0053Human embryonic kidney cells (SV40 T-antigen)Hek293T; HEK-293T; HEK 293T; HEK-293-T; HEK 293 T; 293-T; 293 T; 293T; Human Embryonic Kidney 293T; 293tsA1609neo
IMR-90ARP1001Human lung fibroblastsIMR 90; IMR90; I90
J774A.1ARC0361Mouse macrophagesJ-774A.1; J774.A1; J774 A1; J774A.1; J 774A.1; J774 A.1
MC3T3-E1ARI0076Mouse pre-osteoblastsMc3T3-E1; MC3T3E1; MC-3T3-E1; MC 3T3-E1
MCF-10AARI0078Mammary epithelial cellsMCF 10A; MCF.10A; MCF10A; MCF10-A; MCF10a; MCF-10 Attached
MDCKARI0247Madin-Darby canine kidney epithelial cellsMDCK (NBL-2); MDCK(NBL-2); NBL-2; Madin-Darby Canine Kidney; Madin Darby Canine Kidney
NCTC clone 929ARI0090Mouse fibroblastsNCTC 929; NCTC-929; NCTC929; NCTC-929L; L cell; L cells; L-cell; L-cells; L cell line; L; Strain L-929; L-929; L 929; L929; L929(NCTC); Clone 929
NIH 3T3ARI0091Mouse embryonic fibroblastsNIH/3T3; NIH-3T3; NIH3T3; 3T3; 3T3NIH; 3T3-Swiss; Swiss-3T3; Swiss/3T3; Swiss 3T3; Swiss3T3
PC12 (poorly differentiated)ARC0722Adrenal pheochromocytoma-derived neuronal-like cellsPC-12; PC 12; PC12.1
RAW 264.7ARC0750Mouse macrophagesRAW264; RAW2647; RAW264.7; RAW-264.7; Raw 264.7; Raw264.7
VeroARI0249African green monkey kidney epithelial cellsVERO; VeroCCL81; Vero 81; Vero-81; Verda reno

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