Cell Types
Neural cells
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Amacrine cells
Amacrine cells are a diverse group of inhibitory interneurons in the retina's inner nuclear layer. They form lateral connections within the inner plexiform layer, modulating signals between bipolar cells and ganglion cells. Lacking long axons, they use their processes for local circuit integration. They are crucial for complex visual processing, including motion detection, directional selectivity, and temporal adaptation, shaping the retina's output before it reaches the brain.
Astrocytes
Astrocytes are star-shaped glial cells, the most abundant in the central nervous system (CNS). They are vital for homeostasis: they form part of the blood-brain barrier, regulate blood flow, control extracellular ion/neurotransmitter balance (e.g., glutamate uptake), and provide metabolic support to neurons. Through the "tripartite synapse," they modulate synaptic strength and plasticity. They also respond to injury via reactive astrogliosis, playing dual roles in scar formation and neuroprotection.
Cone cells
Cone cells are photoreceptors specialized for bright-light (photopic) vision, high visual acuity, and color perception. They are concentrated in the fovea centralis. Humans possess three types, each containing a photopigment sensitive to short (blue), medium (green), or long (red) wavelengths, enabling trichromatic color vision. Cones are less light-sensitive than rods but provide fine spatial detail and are critical for tasks like reading, driving, and recognizing faces and colors.
Enteric neurons
Enteric neurons are the functional units of the enteric nervous system (ENS), a complex network embedded in the gastrointestinal wall. They autonomously control gut functions including motility, secretion, blood flow, and immune responses. Comprising sensory neurons, interneurons, and motor neurons, they use diverse neurotransmitters (ACh, serotonin, NO, etc.). This "second brain" operates independently but communicates bidirectionally with the central nervous system.
Excitatory neurons
Excitatory neurons are nerve cells that, when activated, increase the likelihood of their target neuron firing an action potential. They primarily release the neurotransmitter glutamate at their synapses. They form the primary driving force in neural circuits throughout the brain (e.g., cortical pyramidal neurons) and are fundamental for information propagation, synaptic plasticity (like LTP), and processes such as learning, memory, and cognition.
Inhibitory neurons
Inhibitory neurons reduce the probability of their postsynaptic target neuron firing an action potential. They primarily release the neurotransmitters GABA (in the brain) or glycine (in the spinal cord/brainstem). They are crucial for balancing neural circuit activity, preventing runaway excitation, generating rhythmic outputs (e.g., in pacemaker circuits), and shaping the temporal and spatial precision of neural computations. Types include interneurons like basket cells and Purkinje cells.
Muller cells
Muller cells are specialized radial glial cells that span the entire thickness of the retina, from the inner to the outer limiting membrane. They are the principal support cells of the retina, maintaining its structural integrity and homeostasis. They regulate extracellular ion and water balance, recycle neurotransmitters (especially glutamate), store glycogen for energy, and guide light to photoreceptors. Their dysfunction is involved in many retinal diseases.
Oligodendrocytes
Oligodendrocytes are the myelinating glial cells of the central nervous system (CNS). Each oligodendrocyte extends multiple processes to wrap and insulate segments of several different axons with concentric layers of myelin membrane. This myelin sheath greatly increases the speed of action potential propagation (saltatory conduction). They also provide metabolic support to the axons they enwrap. Loss of oligodendrocytes or myelin disrupts nerve signaling.
Rod cells
Rod cells are photoreceptors specialized for low-light (scotopic) vision. They are extremely light-sensitive, containing the pigment rhodopsin, and are responsible for night vision and peripheral vision. Rods do not mediate color perception, providing monochromatic (black-and-white) vision. Their signals converge heavily onto bipolar cells, maximizing sensitivity at the expense of fine detail. They are more numerous than cones and are absent from the central fovea.
Microglia
Microglia are the resident macrophages and primary immune cells of the central nervous system (CNS). In their resting state, they constantly survey the parenchyma. Upon detecting injury, infection, or pathological signals, they activate, becoming phagocytic to clear debris, dead cells, and pathogens. They also play essential roles in synaptic pruning during development, modulating neuroinflammation, and can contribute to both repair and neurodegeneration in diseases.
Melanocytes
Melanocytes are neural crest-derived cells located in the basal layer of the epidermis and in hair follicles. Their primary function is the production of melanin, a pigment that provides color to skin and hair and protects underlying cells from UV radiation damage. Melanin is synthesized in organelles called melanosomes, which are then transferred to neighboring keratinocytes via dendritic processes.
Immune cells
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B cells
B cells are lymphocytes responsible for the humoral arm of the adaptive immune response. They develop in the bone marrow and, upon maturation, circulate in blood and lymph. When activated by antigen (often with T cell help), they proliferate and differentiate into antibody-secreting plasma cells or long-lived memory B cells. Their antibodies neutralize pathogens, opsonize them for phagocytosis, and activate the complement system.
Common lymphoid progenitors
Common lymphoid progenitors (CLPs) are bone marrow-derived progenitor cells committed exclusively to the lymphoid lineage. They arise from hematopoietic stem cells and give rise to all lymphocytes: B cells, T cells, Natural Killer (NK) cells, and some dendritic cell subsets (lymphoid DCs). The CLP represents the critical branch point in hematopoiesis where the lymphoid pathway is specified.
Cycling T cells
Cycling T cells are T lymphocytes undergoing active cell division. This is a hallmark of T cell activation following antigen recognition via the TCR and costimulation. Massive clonal expansion occurs, transforming a few naive antigen-specific T cells into thousands of effector T cells to combat infection. It is a fundamental step in mounting an effective adaptive immune response and generating long-lived memory T cells.
Erythroid cells
Erythroid cells represent the lineage of hematopoietic cells committed to becoming erythrocytes (red blood cells). This includes progenitors (BFU-E, CFU-E) and morphologically identifiable precursors: proerythroblasts, basophilic, polychromatophilic, and orthochromatic erythroblasts, which undergo hemoglobin synthesis, nuclear condensation, and finally enucleation to form reticulocytes and then mature RBCs. Their primary function is oxygen transport via hemoglobin.
Kupffer cells
Kupffer cells are specialized tissue-resident macrophages located within the sinusoids of the liver. They are the largest population of fixed macrophages in the body. They phagocytose pathogens, toxins, cellular debris, and aged red blood cells from the portal blood flow. They play crucial roles in liver immunity, iron recycling, lipid metabolism, and maintaining overall hepatic homeostasis. Their activation can contribute to liver inflammation and fibrosis.
Macrophages
Macrophages are large, phagocytic cells of the innate immune system present in all tissues (where they have specific names like Kupffer cells, microglia). They derive from blood monocytes or local progenitors. They engulf and destroy pathogens and dead cells, secrete cytokines and chemokines to regulate inflammation, present antigens, and are key players in tissue repair, remodeling, and homeostasis. They exhibit remarkable functional plasticity (M1/M2 spectra).
Mast cells
Mast cells are tissue-resident granulocytes found near blood vessels and nerves, particularly in skin, lungs, and gut mucosa. They store pre-formed inflammatory mediators (histamine, tryptase, heparin) in their granules. They are central effectors in IgE-mediated allergic reactions (anaphylaxis, hay fever) and defense against parasites. Upon activation, they rapidly degranulate and also synthesize cytokines/chemokines, influencing inflammation, immunity, and even tissue remodeling.
Monocytes
Monocytes are circulating white blood cells (agranulocytes) that serve as precursors for macrophages and dendritic cells. Produced in the bone marrow, they patrol the bloodstream for several days before migrating into tissues in response to inflammatory signals. In tissues, they differentiate into macrophages or dendritic cells. In blood, they can phagocytose pathogens and present antigens, acting as a bridge between innate and adaptive immunity.
Natural killer cells
Natural Killer (NK) cells are cytotoxic lymphocytes of the innate immune system. They provide rapid responses to virus-infected cells and tumor cells without prior sensitization. They use a balance of activating and inhibitory receptors to detect "missing self" (loss of MHC I) or "induced self" (stress ligands). They kill targets by releasing perforin and granzymes (cytotoxic granules) and through death receptor ligands like FasL.
Neutrophils
Neutrophils are the most abundant white blood cell and the first responders to sites of bacterial or fungal infection. They are highly motile phagocytic cells that engulf and destroy pathogens using antimicrobial granules (containing myeloperoxidase, defensins) and reactive oxygen species. They form neutrophil extracellular traps (NETs) to ensnare microbes. Their short lifespan and potent effector functions make them crucial for acute inflammation.
Plasma B cells
Plasma B cells (or plasma cells) are the terminal, fully differentiated effector state of activated B lymphocytes. They are antibody factories, specializing in the massive secretion of antibodies of a single specificity. They possess extensive endoplasmic reticulum and a prominent Golgi apparatus to support high-rate protein synthesis. Most are short-lived, but some become long-lived plasma cells that reside in the bone marrow, providing sustained antibody levels.
Platelets
Platelets (thrombocytes) are small, anucleate cell fragments derived from megakaryocytes in the bone marrow. They circulate in blood and are essential for hemostasis: upon vascular injury, they adhere, activate, aggregate to form a plug, and provide a surface for coagulation factors. They also secrete growth factors and cytokines, playing roles in inflammation, immunity, and tissue repair.
T cells
T cells (T lymphocytes) are central players in cell-mediated adaptive immunity. They develop in the thymus and express T cell receptors (TCRs) that recognize peptide antigens presented by MHC molecules. Major subsets include: Helper T cells (CD4+, which secrete cytokines to help B cells and macrophages), Cytotoxic T cells (CD8+, which kill infected/cancerous cells), and Regulatory T cells (Tregs, which suppress immune responses to prevent autoimmunity).
Goblet cells
Goblet cells are specialized unicellular mucus-secreting glands found within simple columnar epithelia of the respiratory and intestinal tracts. They have a characteristic goblet shape, with a basal nucleus and an apical region packed with mucin granules. They secrete mucins, which hydrate and form the protective mucus layer that traps particles, lubricates surfaces, and protects the epithelium from pathogens and damage.
Pancreas islet cells
Pancreatic islet (islets of Langerhans) cells are the endocrine cells of the pancreas, organized into clusters scattered throughout the exocrine tissue. Major types include: Alpha cells (secrete glucagon, raises blood sugar), Beta cells (secrete insulin, lowers blood sugar), Delta cells (secrete somatostatin, inhibits other islet cells), and PP cells (secrete pancreatic polypeptide). They precisely regulate glucose homeostasis.
Epithelial cells
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Acinar cells
Acinar cells are the exocrine secretory cells of glands like the salivary glands and pancreas. In the pancreas, they are organized into acini and synthesize, store, and secrete digestive pro-enzymes (zymogens) into a ductal network. They have a highly developed rough ER and abundant secretory (zymogen) granules. When stimulated (e.g., by cholecystokinin), they release their contents into the pancreatic duct, which empties into the duodenum.
Alveolar type 2 cells
Alveolar type 2 (AT2) cells are cuboidal epithelial cells found in the alveolar corners. They have three critical functions: (1) They synthesize and secrete pulmonary surfactant, a phospholipid-protein mixture that reduces surface tension and prevents alveolar collapse. (2) They serve as progenitor cells for both AT1 and AT2 cells, repairing the alveolar epithelium after injury. (3) They contribute to innate immune defense in the alveoli.
Choroid plexus
The choroid plexus is a specialized structure in the brain's ventricles composed of a network of capillaries surrounded by a monolayer of modified epithelial cells (choroid plexus epithelial cells). Its primary function is to produce cerebrospinal fluid (CSF) by filtering blood plasma and actively secreting ions and water. It also forms the blood-CSF barrier and secretes growth factors and signaling molecules into the CSF.
Ciliated cells
Ciliated cells are epithelial cells characterized by the presence of motile cilia (hair-like projections) on their apical surface. They are found in the respiratory tract, oviducts, and ventricles of the brain (ependymal cells). Coordinated, rhythmic beating of cilia moves fluid or mucus over the epithelial surface. In the airways, this "mucociliary escalator" traps and propels inhaled particles and pathogens out of the lungs, a key defense mechanism.
Cycling epithelial cells
A broad categorization for any epithelial cell (from various tissues) that is captured in an active phase of the cell cycle. This label is used in genomic datasets to distinguish proliferating cells from quiescent or terminally differentiated ones. It highlights the dynamic nature of epithelia, where constant renewal and repair are driven by these cycling populations.
Cycling gastric epithelial cell
Cycling gastric epithelial cell (Epithelial cells) in species SP024. Single-cell UMAP atlas.
Cycling intermediate cells
In tissues with stratified epithelia (e.g., skin, esophagus), intermediate cells (also called transit-amplifying cells) are partially differentiated cells between basal and superficial layers. "Cycling" indicates that these cells are actively proliferating, serving to amplify the number of cells produced by the stem cell (basal cell) division before they terminally differentiate into the outer layer cells.
Distal convoluted tubule cells
Cells of the distal convoluted tubule (DCT) in the nephron. They are responsible for fine-tuning electrolyte balance. They actively reabsorb sodium and chloride (via the Na-Cl cotransporter, NCC) and are a major site for parathyroid hormone (PTH)-regulated calcium reabsorption. Their activity is crucial for maintaining blood pressure, potassium, calcium, and magnesium homeostasis.
Endocrine cells
Endocrine cells (Epithelial cells) in species SP024. Single-cell UMAP atlas.
Enterocytes
Enterocytes are the principal absorptive columnar epithelial cells lining the small intestine villi. Their apical surface is covered with microvilli, forming a "brush border" that dramatically increases surface area for nutrient absorption. They digest and absorb carbohydrates, peptides, amino acids, and lipids. They also secrete water and ions and form a crucial barrier between the gut lumen and the internal environment.
Hepatocytes
Hepatocytes are the principal parenchymal cells of the liver, making up about 80% of its mass. They are metabolic powerhouses with functions including: protein synthesis (albumin, clotting factors), bile production, detoxification and metabolism of drugs/toxins, glycogen storage and glucose homeostasis, lipid metabolism, and cholesterol synthesis. They are arranged in plates radiating from central veins, with polarized faces facing sinusoids and bile canaliculi.
Keratinocytes
Keratinocytes are the predominant cell type in the epidermis (the outermost skin layer). They originate from basal layer stem cells and undergo a process of terminal differentiation as they move outward, producing keratin intermediate filaments. In the stratum corneum, they become anucleate corneocytes, forming a tough, waterproof barrier that protects against mechanical injury, water loss, and microbial invasion.
Mucous cells
Mucous cells are specialized secretory epithelial cells that produce and secrete mucus (mucins). They are found in the surface epithelium of the stomach, in salivary glands (as mucous acinar cells), and elsewhere. Their secretions serve to lubricate, protect, and hydrate epithelial surfaces. The mucin granules often stain lightly with H&E, giving the cytoplasm a clear or foamy appearance.
Neuroendocrine cells
Neuroendocrine cells are specialized cells that possess properties of both neurons (they receive neural input and may contain dense-core vesicles) and endocrine cells (they secrete hormones or peptides into the bloodstream). They are found scattered in various epithelia (e.g., lungs, GI tract) and in dedicated glands (adrenal medulla, pituitary). They release substances like serotonin, gastrin, or catecholamines in response to neuronal or chemical stimuli.
Oviduct epithelial cells
These cells line the fallopian tubes (oviducts). The epithelium is simple columnar, consisting of two main cell types: ciliated cells, whose beating helps move the egg/embryo toward the uterus, and secretory (peg) cells, which secrete substances that nourish gametes and facilitate fertilization and early embryo development. Their function is hormonally regulated and critical for reproduction.
Pancreas ductal cells
Pancreatic ductal cells form the lining of the ductal network that transports digestive enzymes from the acini and bicarbonate-rich fluid from the centroacinar cells to the duodenum. They modify the pancreatic juice by secreting bicarbonate ions (HCO3-) to neutralize gastric acid. They express CFTR, and mutations here cause cystic fibrosis-related pancreatic disease. They can also act as progenitor cells in certain contexts.
Parietal cells
Parietal cells (or oxyntic cells) are found in the gastric glands of the stomach lining. They secrete hydrochloric acid (HCl) into the stomach lumen, creating the highly acidic environment necessary for protein digestion and killing ingested microbes. They also secrete intrinsic factor, a glycoprotein essential for vitamin B12 absorption in the ileum. They have a distinctive intracellular canaliculus system for acid secretion.
Principal cells
In the kidney's collecting duct, principal cells are the most abundant cell type. They are responsible for the final regulation of water, sodium, and potassium balance. They express aquaporin-2 channels on their apical membrane (inserted in response to vasopressin/ADH) for water reabsorption. They also reabsorb sodium via ENaC channels and secrete potassium, processes regulated by aldosterone.
Progenitor-like epithelial cells
This describes epithelial cells that exhibit molecular signatures of progenitor or stem cells but are not the most primitive stem cell. They are often in an intermediate state, possessing the capacity to proliferate and give rise to differentiated cells, but may have some lineage restriction. They are crucial for steady-state tissue maintenance and repair after injury.
Proximal tubule cells
These cells line the proximal convoluted tubule (PCT) of the nephron, the first and longest segment. They are responsible for the bulk reabsorption of filtered nutrients (glucose, amino acids), ions (sodium, chloride, bicarbonate), and water (~65%). Their apical surface has a dense brush border of microvilli to increase surface area. They also actively secrete organic acids and bases into the filtrate.
Retinal pigmentary epithelial cells
Retinal pigment epithelium (RPE) cells form a monolayer between the neural retina and the choroid. They are crucial for photoreceptor health: they phagocytose shed photoreceptor outer segments, recycle visual pigments, absorb scattered light (melanin), transport nutrients, and form the outer blood-retinal barrier. RPE dysfunction leads to age-related macular degeneration and other retinal diseases.
Secretory epithelial cells
Secretory epithelial cells (Epithelial cells) in species SP024. Single-cell UMAP atlas.
Urothelial cells
Urothelial cells (transitional epithelial cells) line the urinary tract from renal pelvis to urethra. They form a distensible, impermeable barrier. The superficial umbrella cells have a unique apical plaque of uroplakin proteins and can change shape (from cuboidal to squamous) as the bladder fills and stretches, preventing urine from leaking into underlying tissues. This epithelium also protects against toxic substances in urine.
Stromal cells
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Fibroblasts
Fibroblasts are the most common cells of connective tissue. They synthesize and secrete the extracellular matrix (ECM) components, including collagen, elastin, and fibronectin, providing structural and biochemical support to surrounding cells. They are key players in wound healing, where they proliferate, migrate to the injury site, and differentiate into contractile myofibroblasts to close wounds. They also communicate with immune and epithelial cells.
Granulosa cells
Granulosa cells are the somatic cells that surround and support the developing oocyte within the ovarian follicle. They produce estrogen (from androgen precursors supplied by theca cells) and inhibin. They also supply nutrients to the oocyte and communicate with it via gap junctions. After ovulation, they transform into luteal cells of the corpus luteum, which secrete progesterone.
Mesenchymal cells
Mesenchymal cells are a broad category of cells derived from the mesoderm. They include fibroblasts, adipocytes, osteoblasts, chondrocytes, and muscle cells. In development, they give rise to connective tissues, bone, cartilage, and blood vessels. Mesenchymal stem/stromal cells (MSCs) are multipotent adult cells that can differentiate into these lineages and have immunomodulatory properties, holding potential for regenerative medicine.
Other stromal cells
Stromal cells are a heterogeneous group of connective tissue cells that provide structural support and create the microenvironment ("stroma") for parenchymal cells within an organ. They include fibroblasts, adipocytes, pericytes, and various types of mesenchymal stem/stromal cells. They produce ECM, secrete growth factors and cytokines, and play critical roles in tissue architecture, homeostasis, repair, and disease progression (e.g., in cancer).
Pericytes
Pericytes are contractile mesenchymal cells that wrap around the endothelial cells of capillaries and venules. They are embedded in the basement membrane and are crucial for vascular stability, regulating blood flow, promoting endothelial survival, and participating in the formation and maintenance of the blood-brain barrier. They also have stem cell properties and can differentiate into other mesenchymal cells during tissue repair.
Stellate cells
In the liver, hepatic stellate cells (HSCs) reside in the space of Disse. In their quiescent state, they store vitamin A. Upon liver injury, they activate, proliferate, and transform into myofibroblast-like cells that produce large amounts of extracellular matrix, driving liver fibrosis and cirrhosis. Pancreatic stellate cells play a similar fibrogenic role in pancreatitis and pancreatic cancer.
Muscle cells
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Cardiomyocytes
Cardiomyocytes are the striated muscle cells that constitute the cardiac muscle of the heart. They are responsible for generating the contractile force that pumps blood. They are connected end-to-end by intercalated discs containing gap junctions for electrical coupling and desmosomes for mechanical attachment. Unlike skeletal muscle, they are mononucleated or binucleated and have intrinsic automaticity (pacemaker cells).
Satellite cells
Satellite cells are the resident stem cells of skeletal muscle, located between the basal lamina and the sarcolemma of muscle fibers. They are normally quiescent but activate, proliferate, and differentiate into myoblasts in response to injury or exercise. They fuse with existing fibers or with each other to form new myofibers, enabling muscle growth and repair.
Smooth muscle cells
Smooth muscle cells (SMCs) are involuntary, non-striated muscle cells found in the walls of hollow organs (e.g., blood vessels, gut, bladder, uterus). They are spindle-shaped with a single central nucleus. They contract slowly and can maintain tension for long periods (tonus). Contraction is regulated by the autonomic nervous system, hormones, and local factors (e.g., nitric oxide, endothelin).
Type II myonuclei
In skeletal muscle, myonuclei within fast-twitch (Type II) muscle fibers. These fibers are glycolytic, generate more force but fatigue quickly. Type II myonuclei (subtypes IIa, IIx/d) govern the expression of genes for glycolytic enzymes, fast myosin heavy chains, and other components defining the fast, anaerobic metabolic phenotype of the fiber.
Germ cells
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Spermatids
Spermatocytes are developing male germ cells that undergo meiosis. Primary spermatocytes (diploid, 4N DNA) result from spermatogonial mitosis. They undergo Meiosis I to form two secondary spermatocytes (haploid, 2N DNA). Secondary spermatocytes rapidly undergo Meiosis II to produce four spermatids (haploid, 1N DNA). This process occurs within the seminiferous tubules, supported by Sertoli cells.
Spermatocytes
Spermatocytes are developing male germ cells that undergo meiosis. Primary spermatocytes (diploid, 4N DNA) result from spermatogonial mitosis. They undergo Meiosis I to form two secondary spermatocytes (haploid, 2N DNA). Secondary spermatocytes rapidly undergo Meiosis II to produce four spermatids (haploid, 1N DNA). This process occurs within the seminiferous tubules, supported by Sertoli cells.
Spermatogonia
Spermatogonia are the undifferentiated germ stem cells located on the basement membrane of the seminiferous tubules. They undergo mitotic divisions to self-renew and produce a population of cells committed to differentiation (primary spermatocytes). Type A spermatogonia are the stem cell reservoir, while Type B spermatogonia are committed progenitors. They are the foundation of lifelong sperm production.
Other
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Promyelocytes
Promyelocytes (Other) in species SP024. Single-cell UMAP atlas.
Intercalated cells
Intercalated cells are specialized cells found in the collecting ducts of the kidney nephron. They are critical for regulating systemic acid-base balance. There are two main types: Type A (alpha) cells secrete protons (H+) via H+-ATPase pumps and reabsorb bicarbonate, correcting acidosis. Type B (beta) cells secrete bicarbonate and reabsorb protons, correcting alkalosis. They also play a role in potassium balance.
Mesothelial cells
Mesothelial cells form a monolayer (the mesothelium) that lines the body's serous cavities (pleural, pericardial, peritoneal) and covers the outer surface of internal organs. They produce a lubricating serous fluid that allows organs to move smoothly. They also provide a protective barrier, participate in immune surveillance and inflammation, and can undergo transition to a fibroblast-like phenotype (mesothelial-to-mesenchymal transition) in pathology.