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Cumacea

Cumacea is an order of small peracarid crustaceans characterized by a distinctive comma-shaped body, featuring an enlarged that envelops the head and the first three thoracic segments, a slender abdomen, and bifurcated uropods. These benthic marine animals, often called hooded or comma shrimp, range in size from 1 to 30 mm and inhabit soft sediments across all oceans, from intertidal zones to abyssal depths exceeding 8,000 meters, with some species tolerating brackish or freshwater environments. Cumaceans exhibit direct development without a planktonic larval stage, as females brood eggs and juveniles in a ventral marsupium until release, limiting their dispersal and contributing to high local densities that can reach over 88,000 individuals per square meter. Taxonomically, Cumacea comprises approximately 1,900 described species organized into eight families, including the diverse Bodotriidae, Diastylidae, and Leuconidae, with estimates suggesting up to 4,000 total species worldwide. Recent multigene phylogenetic analyses confirm the of the order and reveal a deep evolutionary split between lineages with a (a ) and those with a pleotelson (fused and last abdominal segment), while supporting the integrity of four core families: Pseudocumatidae, Lampropidae, Bodotriidae, and Nannastacidae. increases with depth, and their uniform varies in texture, color, and overall shape, aiding identification. Ecologically, cumaceans are key components of soft-sediment communities, primarily functioning as deposit feeders that consume micro-particles from the surface, though some families like Nannastacidae are carnivorous or . They serve as important prey for a wide array of predators, including , , birds, and even whales, and their abundance makes them potential bioindicators of environmental changes in marine benthic habitats. Distributed globally with patchy abundances, cumaceans thrive in or substrates and have been recorded in extreme settings such as hydrothermal vents, underscoring their adaptability despite limited mobility.

Description and Anatomy

External Morphology

Cumaceans exhibit a distinctive typical of peracarid crustaceans, measuring 1–30 mm in length. The body is divided into a , formed by the fusion of the head and , and a free (pleon) consisting of six somites. The is dominated by a large, inflated that functions as a hood-like dorsal shield, enclosing the first three thoracic segments and often extending laterally and ventrally to form protective lobes. This typically features a pseudorostrum—a forward-projecting structure—and may be sculptured or ornamented for or . The first three thoracic segments, enclosed by the carapace, bear three pairs of maxillipeds. The pereon includes five free thoracic somites visible posterior to the carapace, bearing five pairs of pereopods adapted primarily for burrowing in soft sediments, with some species capable of limited swimming via pleopod or uropod movements. The first antennae are short and biramous, comprising three articles with two flagella, while the second antennae are rudimentary in females but elongated and flagellated in males for sensory and functions. The pleon tapers to a narrow, elongated form, terminating in a telson that articulates with biramous uropods—the exopod typically two-articled and the endopod one- to three-articled—forming a tail fan essential for and responses. In some lineages, the telson is fused with the last abdominal somite to form a pleotelson. The carapace also contributes to respiration by accommodating branchial chambers beneath its ventral margins. Sexual dimorphism is pronounced in adult cumaceans, reflecting adaptations for and . Females possess a marsupium—a ventral brood pouch formed by overlapping oostegites derived from the thoracic appendages—for incubating embryos, and they generally lack pleopods except in rare cases. Males, in contrast, are often larger with less inflated s, enlarged second antennae, and well-developed pleopods on abdominal somites for swimming, along with more exopods on thoracic appendages. Eye structure varies, with most bearing a single fused nauplius eye or paired eyes situated on an anterior ocular lobe of the ; in deep-sea , these eyes are frequently unpigmented or reduced due to low-light environments.

Internal Features

The internal anatomy of cumaceans supports their benthic lifestyle in marine sediments, with organ systems adapted for efficient gas exchange, nutrient processing, sensory perception, hemolymph distribution, and gamete production within a compact body. These features are enclosed largely within the carapace-covered cephalothorax, facilitating physiological functions in low-oxygen environments. The respiratory system relies on branchial gills housed in a ventral branchial chamber beneath the carapace, where water currents generated by appendage movements enable gas exchange. These gills consist of lamelliform epipodites primarily on the first maxilliped and the first few thoracic limbs, with males typically possessing more numerous structures than females; water enters anteriorly and exits via a posterior siphon. This setup is particularly suited to the low-oxygen conditions of sedimentary habitats, as the enclosed chamber maintains a stable microenvironment for diffusion. The digestive system is straightforward, comprising a , , and , with the serving as the primary site for nutrient absorption and secretion. The features a simple, non-muscular that receives filtered or scraped food particles via the mouthparts, while the extends through the body and connects to the large, paired ; undigested material passes through the short to the . This configuration supports deposit-feeding or filter-feeding behaviors, efficiently processing organic and microorganisms from sediments. The includes a () located in the anterior , connected to a ventral cord bearing 17 paired ganglia that innervate the segmented body and appendages. Sensory structures such as statocysts in the second antennae provide and cues, essential for burrowing and in soft substrates; additional sensory setae on the antennae detect chemical and stimuli. This decentralized arrangement allows coordinated responses to environmental pressures despite the cumacean's small size. Cumaceans possess an open characterized by a dorsal heart positioned in the posterior , which pumps through lacunae and sinuses rather than closed vessels. The heart is relatively short and voluminous compared to other peracarids, with five pairs of lateral arteries branching to supply the thoracic appendages, branchial chamber, and body tissues; returns via open sinuses to the pericardial cavity surrounding the heart. This system efficiently distributes oxygen and nutrients in the low-metabolic demands of their infaunal existence. Reproductive organs differ by sex, with females bearing paired ovaries that extend from the into the anterior abdomen, maturing eggs that are fertilized and brooded in a marsupium formed by leaf-like oostegites on the thoracic pereopods. Males have paired testes in a similar position, producing spermatophores deposited externally on the without an ; the oostegites seal the marsupium to protect developing embryos. These structures enable direct within the brood pouch, minimizing exposure to predators.

Life History

Reproduction

Cumacea are dioecious, with separate sexes exhibiting pronounced that aids in mate recognition and copulation, including differences in abdominal length and morphology. Mating behaviors involve precopulatory pairing, often initiated by pheromones released by females and detected by males via antennal receptors, leading to male clasping of the female with modified maxillipeds and pereopods. Copulation typically occurs in burrows or on the surface shortly after the molts, when her oostegites are developing but not yet fully enclosing the ventral area. follows, with males transferring spermatophores to the 's ventrum using the first pleopods, depositing them directly into the forming space before the oostegites seal. Fertilized eggs are brooded externally in the marsupium, a ventral pouch formed by paired oostegites on the thoracic coxae, which holds to oxygenate the developing embryos. Fecundity varies by species and body size, typically ranging from 15 to 170 eggs per brood. Brooding lasts 2-6 weeks, influenced by and water depth, after which mancae are released; females often produce multiple broods over their lifespan through successive molts.

Development and Growth

Cumaceans undergo epimorphic development, a characteristic shared with other peracarids, in which embryos develop to a near-complete form within the female's marsupium before hatching as manca juveniles. These manca juveniles are mobile but morphologically incomplete, lacking the final pair of pereopods and pleopods. Upon release from the marsupium, the manca stage typically lasts a few days before the first post-marsupial molt transforms it into a full juvenile, with subsequent molts progressively adding or refining segments and appendages to achieve the adult form. Growth in cumaceans occurs exclusively through , the periodic shedding of the , which allows for expansion and maturation. Juveniles closely resemble miniaturized adults in overall and proportions, with no distinct metamorphic phase; however, they lack fully developed until later instars. Most species complete post-marsupial through 5 to 10 molts, varying by and —males often reaching maturity in 6 to 8 instars, while females may undergo 7 to 9 or more to accommodate brooding cycles. Lifespans typically range from 6 to 18 months in shallow-water species, which complete one or more generations annually, whereas deeper-water forms exhibit slower growth and potentially longer lifespans exceeding a year due to reduced metabolic rates in colder, stable environments. Environmental factors, particularly , significantly influence molt frequency and overall rates in cumaceans. In shallow-water species, optimal occurs at temperatures between 10 and 20°C, where molt intervals shorten to 10 to 14 days during active phases, promoting faster development; higher temperatures can induce or mortality, while lower ones extend intermolt periods. Deeper-water species, adapted to consistently low temperatures around 2 to 4°C, display protracted with larger size increments per molt (20 to 25%) but fewer cycles overall, reflecting adaptations to limited food and stable conditions.

Ecology and Distribution

Habitats and Global Range

Cumaceans are predominantly benthic crustaceans that inhabit soft-bottom environments, particularly fine-grained s such as and sand, where they often infaunally to depths of several centimeters. While most are restricted to fully conditions, some occur in brackish estuarine or intertidal zones, demonstrating a degree of euryhalinity. They are rarely found on coarser substrates like or cobble, though a few may adopt an epibenthic lifestyle on surfaces. Some have been recorded in extreme environments such as shallow-water hydrothermal vents. Their depth distribution spans from the to abyssal depths exceeding 8,000 m in hadal zones of some ocean basins. Highest is observed in bathyal zones (200–2,000 m), where continental slopes provide stable, fine-sediment habitats conducive to diverse assemblages. Cumaceans exhibit across all major oceans, including the , Atlantic, Indian, Pacific, Southern, and Mediterranean seas, with polar species adapted to cold waters near -1.8°C and tropical forms tolerating temperatures up to 30°C. Abiotic tolerances include salinities from approximately 10 to 40 , encompassing oligohaline brackish conditions in some estuaries (down to 0–5 for certain species) to brackish conditions in isolated basins like the (up to 13 ). Coastal populations are particularly sensitive to anthropogenic pollution, such as and discharge, which disrupt sediment quality and reduce abundance in affected soft-bottom habitats.

Feeding, Behavior, and Interactions

Cumaceans are predominantly detritivores and microphagous feeders, consuming organic , , and from benthic sediments. They employ specialized maxillipeds to filter fine organic particulates from interstitial waters or the bottom boundary layer, or to resuspend and scrape sediments during deposit feeding, with some bodotriid species acting as micrograzers by rotating sand grains to access associated microflora and using mouthpart setae. Although most species rely on these passive or manipulative techniques, certain carnivorous taxa, particularly in the family Nannastacidae, actively prey on small using pereopods to capture live or moribund organisms. Behavioral patterns in cumaceans often revolve around benthic lifestyles, including burrow construction where individuals maintain a connection to the sediment surface via the pseudorostrum and siphons for respiration and feeding. ing occurs head-first through hydraulic tunneling in sandy substrates or forward motion in mud, enabling rapid burial while exposing uropods for stability. In shallow waters, many exhibit diurnal vertical , emerging from burrows at to swim pelagically and returning near dawn, potentially to avoid visual predators or access food resources. Swarming is observed in select deep-sea taxa, where aggregations facilitate mating or dispersal in low-density environments, though such events are less common than in shallow-water populations. Cumaceans serve as key prey in marine food webs, facing predation from such as rays, flatfishes, gadids, and acipenserids, as well as polychaetes, nemerteans, and larger crustaceans; in some benthic species, cumaceans constitute 10-50% of the diet by volume, underscoring their trophic significance. They occasionally engage in commensal relationships with burrowing organisms, sharing burrow spaces without mutual harm, which enhances habitat utilization in soft s. Additionally, cumaceans act as bioindicators of health in programs, with community structure shifts signaling or due to their sensitivity to organic enrichment and changes. Ecologically, cumaceans play a vital role as intermediate consumers in benthic food chains, linking detrital pathways to higher trophic levels while nutrients through bioturbation and processing in sediments. In nutrient-rich habitats, their densities can reach up to 88,591 individuals per square meter, supporting high secondary production and contributing substantially to .

Evolutionary and Research History

Fossil Record

The fossil record of Cumacea is notably sparse compared to other marine arthropods. Putative appearances date to the Mississippian subperiod of the , approximately 350 million years ago, but these are doubtful and lack diagnostic features such as the fused and setose uropods, with their stem-group status unclear. This scarcity stems primarily from the group's small size—typically 2–10 mm in length—and their soft-bodied nature, which hinders preservation outside of exceptional conditions. No verified pre- records exist, underscoring the challenges in tracing their deep-time origins. The earliest confirmed crown-group cumaceans date to the mid-Cretaceous. Key fossil discoveries include rare Paleozoic specimens from , described as the oldest attributed to the Cumacea, consisting of fragmentary remains that provide limited morphological detail but confirm their presence in early marine environments. A landmark find is Eobodotria muisca, an exceptionally preserved crown-group cumacean from the mid-Cretaceous (upper to lower , ~95–90 Ma) of , trapped in with over 200 individuals showing fine details such as mouthparts, thoracic legs, pleopods, uropods, antennal flagella, and even ommatidia in the eyes, including a preserved brood pouch in females. More recently, Makrokylindrus itoi, a beautifully preserved Diastylidae cumacean from the Plio-Pleistocene (~2.5 Ma) Hijikata Formation in , reveals and structures in , marking the first record for that family and highlighting ongoing discoveries in younger strata. These fossils are typically preserved in fine-grained sediments or , which allow for the retention of delicate features otherwise lost to taphonomic processes. The 2024 description of Makrokylindrus itoi further suggests that the scarce record reflects preservation biases rather than low past diversity, indicating underestimated deep-time richness. This limited record suggests that Cumacea originated in the era, with modern morphologies and familial affinities emerging by the , as evidenced by the bodotriid-like traits in E. muisca. Compared to other peracarid groups, Cumacea exhibit low diversification in the fossil record, with few species documented across geological time despite their current benthic abundance. Significant gaps persist, particularly in resolving early family-level relationships due to fragmentary preservation, though recent and finds indicate that their deep-time diversity may have been underestimated.

History of Study and Key Discoveries

The study of Cumacea began in the late with the initial descriptions of species within existing genera. The order Cumacea has been known since 1780, when Ivan Lepechin described Diastylis scorpioides (originally Oniscus scorpioides), marking the earliest formal record of the group as small, shrimp-like crustaceans. Diastylis rathkei was described by Henrik Krøyer in 1841 as Cuma rathkii from waters. Subsequent early observations placed them among miscellaneous malacostracans, but their distinct morphology prompted further scrutiny. In 1846, Danish zoologist Henrik Nikolaj Krøyer formally established the order Cumacea, distinguishing it from other peracarids based on unique features like the marsupium in females and the segmented body plan. During the 19th and early 20th centuries, foundational taxonomic and anatomical work advanced understanding of cumacean diversity and structure. Norwegian naturalist Georg Ossian Sars conducted detailed studies in the 1860s, including descriptions in his 1865–1869 work Beskrivelser og Figurer over alle norske Krebsdyr, where he elucidated key anatomical traits such as the pseudorostrum, fusion, and uropod morphology, establishing a baseline for species identification across faunas. Building on this, zoologist Carl Zimmer produced extensive monographs from the 1900s to 1930s, including reports on Cumacea from expeditions like the (1903) and Siboga (1933), in which he described approximately 500 species and revised family-level classifications, emphasizing regional variations in pseudorostral and structures. Zimmer's syntheses, such as his 1936 analysis of Cumacea, highlighted the order's global distribution and morphological plasticity. Mid-20th-century research shifted toward ecological and distributional insights, spurred by major oceanographic expeditions. The HMS Challenger expedition (1872–1876) collected numerous deep-sea specimens, revealing cumacean abundance in abyssal habitats and prompting later descriptions by William Thomas Calman in the 1890s–1900s that documented over 50 new species from depths exceeding 2,000 meters, underscoring their role in benthic communities. In the 1950s, Norman S. Jones advanced ecological studies through analyses of African shelf faunas, such as his 1955 report on Cumacea, which quantified population densities and preferences, linking species distributions to type and currents. From the late into the 21st, molecular approaches revolutionized cumacean , complementing traditional . Starting in the , studies using mitochondrial subunit I () sequences, such as Haye et al.'s 2004 phylogeny, resolved family relationships and cryptic diversity, challenging prior classifications based on shape alone. A key paleontological discovery came in with et al.'s description of exceptionally preserved amber specimens from , confirming brooding behavior in crown-group Cumacea as early as ~95–90 million years ago and providing evidence of their ancient benthic lifestyle. Despite these advances, significant gaps persist, including outdated regional faunal inventories from pre-2000 surveys and the ongoing need for integrative —combining with —following initial calls in the to address underestimated in polar and deep-sea realms.

Taxonomy and Phylogeny

Classification and Diversity

The order Cumacea belongs to the superorder within the class . As of 2025, Cumacea comprises 8 accepted families, approximately 162 genera, and 1,890 valid species worldwide. Among the families, Nannastacidae is the most diverse, containing around 530 species primarily adapted to deep-sea environments, while Diastylidae follows with over 350 species distributed across various depths. Leuconidae, with about 180 species, consists mainly of shallow-water burrowers that inhabit soft sediments on continental shelves. One genus remains , reflecting ongoing uncertainties in placement due to limited morphological distinctions. Patterns of diversity show increasing with depth, particularly in deep-sea environments, though continental shelves also support diverse assemblages. In contrast, deep-ocean environments harbor significant knowledge gaps with many potentially undescribed , underscoring the need for further sampling in abyssal and hadal zones where data remain sparse. The current classification draws from the 2011 WoRMS baseline, which provided a comprehensive framework for cumacean , with notable post-2011 revisions incorporating over 200 new from expeditions and Indo-Pacific deep-sea surveys. Since 2022, additional have been described from regions like the Mediterranean and hydrothermal vents, contributing to ongoing taxonomic revisions. Taxonomic challenges persist due to cryptic species complexes that exhibit minimal morphological differences, often leading to synonymy issues; has emerged as essential for delineating these boundaries and refining species-level identifications.

Phylogenetic Position and Relationships

Cumacea occupies a basal position within the superorder , a diverse of malacostracan crustaceans characterized by direct development and brooding. Recent phylogenomic analyses, incorporating extensive transcriptomic data from multiple peracarid taxa, recover Cumacea as part of the Mancoida, where it forms a well-supported group alongside and , with Mictacea and Spelaeogriphacea as successive sisters. Multigene studies using nuclear and mitochondrial markers further position Cumacea as sister to in some analyses or as a basal member relative to , highlighting its early divergence within . These molecular phylogenies underscore Cumacea's , supported by key synapomorphies such as a that folds dorsally to enclose the gills and branchial cavity, reduced antennules and antennae (often with a prominent antennal scale but shortened flagella), and brooding of embryos in a ventral marsupium formed by the carapace extensions. Internally, Cumacea exhibits a deep bifurcation into two main lineages: one comprising telson-bearing families (e.g., Diastylidae, Lampropidae, Ceratocumatidae) and the other pleotelson-bearing families (e.g., Bodotriidae, Leuconidae, Nannastacidae). The first comprehensive multigene phylogeny, based on six loci (18S, 28S, 12S, 16S, CytB, ), confirms Bodotriidae as basal, with deep-sea clades like Ceratocumatidae diverging early, and resolves seven of the eight recognized families as monophyletic, though Gynodiastylidae's placement remains tentative due to limited sampling. This structure suggests an ancient radiation, with the fusion of the into a pleotelson evolving once in the second lineage. The evolutionary origins of Cumacea remain obscure, primarily due to significant gaps in the fossil record, which is among the sparsest among peracarids and limits calibration of molecular clocks. The oldest known cumacean fossils date to the Mississippian (early ) of , represented by poorly preserved forms that hint at a Paleozoic ancestry potentially shared with early isopods, both groups exhibiting similar benthic adaptations in ancient marine environments. Advances in mitogenomics have bolstered confidence in Cumacea's and its placement within , with complete mitochondrial genomes from species like Dimorphostylis asiatica aligning closely with other peracarids and refuting . These findings contrast with 1990s morphology-based phylogenies, which often positioned Cumacea nearer to based on appendage and traits, rather than the Tanaidacea-Isopoda alliance supported by modern data.

References

  1. [1]
    First multigene phylogeny of Cumacea (crustacea: Peracarida)
    May 23, 2022 · Cumaceans are small peracarid crustaceans that can be remarkably diverse and important benthic organisms. Despite their ubiquitous presence ...
  2. [2]
    Cumaceans (Crustacea, Peracarida) associated with shallow-water ...
    Dec 11, 2024 · Cumaceans are small crustaceans of the class Malacostraca and the superorder Peracarida ( Corbera 2015 ). These organisms lack larval stages, ...
  3. [3]
    Cumacea - Indian River Lagoon Species Inventory
    Brief Summary: Cumaceans are an order of benthic crustaceans with worldwide distribution. There are about 1400 described species classified into eight families ...
  4. [4]
    Cumacea World database
    ### Summary of External Morphology of Cumacea
  5. [5]
    [PDF] CUMACEA - NMBAQC
    The family contains around 285 species in 20 genera, with very clear sexual dimorphism. Identification of male specimens is very difficult especially if the ...
  6. [6]
    None
    ### Summary of Cumacea of the NEP: External Morphology, Body Size, Carapace, Antennae, Appendages, Dimorphism, Eyes (Focus on Deep-Sea Species)
  7. [7]
    On the Ancestral Development of the Respiratory Organs in the ...
    The Cumacea are probably degenerated from forms not far removed from the Archischizopod, and have only one gill remaining. The Arthostraca, comprising the ...Missing: internal | Show results with:internal
  8. [8]
    Morphology of the haemolymph vascular system in Tanaidacea and ...
    Tanaidacea and Cumacea are crucial for understanding the phylogenetic relationships of "core group" peracarids. Here, the haemolymph vascular system in three ...Missing: respiratory digestive nervous reproductive scientific review
  9. [9]
    SEXUAL DIMORPHISM AND REPRODUCTIVE BEHAVIOR IN ...
    Individuals of Almyracuma proximoculi are the least sexually dimorphic cumaceans known, because the males are progenetic, i.e., they are precociously ...
  10. [10]
    SEXUAL DIMORPHISM AND REPRODUCTIVE BEHAVIOR IN
    Individuals of Almyracuma proximoculi are the least sexually dimorphic Cu maceans known, because the males are progenetic, i.e., they are precociously ...
  11. [11]
    Reproduction and development of marine Peracaridans
    Aug 10, 2025 · The oocytes are fertilized in the marsupium from spermatophores 66 which mating males deposit at the same time as the arriving oocytes ( Johnson ...Missing: dimorphism | Show results with:dimorphism
  12. [12]
    CUMACEA - Zenodo
    Muradian, 1974), intromittent organs are unknown in the Cumacea, and sperm are extruded from two pores on the ventrum of the fifth thoracic somite. The ...
  13. [13]
    Comparative fecundity and reproductive strategies in seventeen ...
    A discussion of the various life-history and reproductive strategies employed by the Cumacea is included.Missing: organs | Show results with:organs
  14. [14]
    New insights into the distribution and biology of some cumaceans ...
    Fecundity of this species was estimated from the collected specimens, resulting in a mean of 11.9 ± 2.9 embryos per brood. These values are between the lowest ...
  15. [15]
    [PDF] CUMACEA - CORE
    In the precopula position, the male utilizes the flagella of the second antennae as grasping organs to hold the female by her second or third abdominal segments ...
  16. [16]
    Collecting and Processing Cumaceans - Oxford Academic
    Cumaceans are small ( 1 − 30 m m ) peracarid crustaceans with an inflated carapace and narrow abdomen, creating an appearance similar to that of a comma, and “ ...<|control11|><|separator|>
  17. [17]
    Arctic Ocean Cumacea | SpringerLink
    The Cumacea, like all Peracarida, have an epimorphic larval development; eggs are laid and develop in the brood pouch. This stage is followed by the manca ...
  18. [18]
    The growth, development and reproduction of a deep sea cumacean ...
    Sexual Dimorphism and Reproductive Behavior in Almyracuma proximoculi (Crustacea: Cumacea): The Effect of Habitat. Article. Oct 1983. Thomas K. Duncan.
  19. [19]
    MEPS » v284 » p211-225 - Inter-Research Science Publisher
    Dec 21, 2004 · ABSTRACT: The life history of the cumacean Nippoleucon hinumensis was investigated in the Seto Inland Sea of Japan from August 1998 to February ...
  20. [20]
    [PDF] Marine Flora and Fauna of the Northeastern United State~ Crustacea
    Crustacea: Cumacea 1. LES WATLING2. ABSTRACT. This manual includes an introduction on the external and interanl morphology, development, life history, ecology ...
  21. [21]
    Cumacea - an overview | ScienceDirect Topics
    Cumacea is defined as a group of marine crustaceans characterized by a conspicuously narrow posterior and primarily feeding on detrital deposits in benthic ...Missing: morphology | Show results with:morphology
  22. [22]
    (PDF) Large-scale biodiversity pattern of Cumacea (Peracarida
    Aug 5, 2025 · Analysis of large set of 122 epibenthic sledge samples collected in the deep Atlantic (500-4,000 m depth) revealed the presence of 225 species, ...
  23. [23]
    Cumacea World database - Distribution
    World Oceans (World); Arctic Ocean (IHO Sea Area); Atlantic Ocean (General Sea Area); Baltic Sea (IHO Sea Area); Indian Ocean (IHO Sea Area); Mediterranean ...
  24. [24]
    (PDF) Global diversity of cumaceans & tanaidaceans (Crustacea
    Aug 6, 2025 · Most non-marine cumaceans (19 species) belong in the Pseudocumatidae and appear restricted to the Caspian Sea (with salinity up to 13%) and its ...
  25. [25]
    Nippoleucon hinumensis - Marine Invasions research at SERC
    It has been introduced to the West coast of North America where it was first reported from Coos Bay, Oregon in 1977.
  26. [26]
    (PDF) Cumaceans as indicators of eutrophication on soft bottoms
    Aug 10, 2025 · Some species of Cumacea are also good indicators of eutrophication, and have been proposed as organisms appropriate for biomonitoring (Corbera ...
  27. [27]
    [PDF] The effects of some domestic pollutants on the cumacean ...
    Mar 1, 2014 · This study was carried out to determine the effects of sewage pollution on the cumacean assemblages found in the coastal waters of the ...
  28. [28]
  29. [29]
    The diurnal vertical migration of some Cumacea (Crustacea ...
    The occurrence of a diurnal vertical migration was recorded for two sublittoral cumaceans, Pseudocuma longicornis and Iphinöe trispinosa, in the sublittoral ...
  30. [30]
    Large-scale biodiversity pattern of Cumacea (Peracarida
    Aug 16, 2004 · We investigate large-scale biodiversity pattern in deep-sea benthos by analysis of a data set of 225 species among 55937 individuals of Cumacea ...Missing: swarming | Show results with:swarming
  31. [31]
    Cumaceans (Crustacea, Peracarida) associated with shallow-water ...
    Dec 11, 2024 · This study aimed to report the distribution of cumaceans in shallow-water hydrothermal vents at Banderas Bay and to identify the specimens present.
  32. [32]
  33. [33]
  34. [34]
    Exceptional preservation of comma shrimp from a mid-Cretaceous ...
    Nov 27, 2019 · ... and cylindrical (figure 3b,c,e). Although not much is known about the digestive system in extant cumaceans, at least some nannastacid genera ...
  35. [35]
    A beautifully preserved comma shrimp (Pancrustacea: Peracarida ...
    Sep 10, 2024 · A beautifully preserved comma shrimp (Pancrustacea: Peracarida) from the Plio-Pleistocene of Japan and the fossil record of crown Cumacea.
  36. [36]
  37. [37]
  38. [38]
    California Crustacea of the order Cumacea - DSpace Repository
    California Crustacea of the order Cumacea ... Zimmer, Carl. 1936. "<a href="https://repository.si.edu/handle/10088/16243">California Crustacea of the order ...Missing: monographs 1900s- 1930s
  39. [39]
    Molecular insights into Cumacean family relationships (Crustacea ...
    Cumaceans are small (1–10 mm) crustaceans (Malacostraca, Eumalacostraca, and Peracarida) that reside on the surface layer of the sediment of oceans and seas. A ...
  40. [40]
    Exceptional preservation of comma shrimp from a mid-Cretaceous ...
    Nov 27, 2019 · Cumaceans have one of the poorest fossil records among marine arthropods, despite today being abundant and speciose benthic organisms associated ...
  41. [41]
    Adding pieces to the puzzle: insights into diversity and distribution ...
    Nov 11, 2021 · This study focuses on the marine bottom-dwelling peracarid crustacean taxon Cumacea from northern waters, using a combined approach of morphological and ...
  42. [42]
    World Register of Marine Species - Cumacea - WoRMS
    Cumacea · Family Bodotriidae T. Scott, 1901 · Family Ceratocumatidae Calman, 1905 · Family Diastylidae Bate, 1856 · Family Gynodiastylidae Stebbing, 1912 · Family ...Missing: genera count 2023
  43. [43]
  44. [44]
  45. [45]
  46. [46]
    Three new species and one new genus of abyssal Cumacea ...
    Preliminary identification revealed no less than 72 species from 23 genera and 6 families. Almost 90% of the sampled species seem to be new to science. Five ...
  47. [47]
    [PDF] Global Coordination and Standardisation in Marine Biodiversity ...
    Jan 9, 2013 · As a consequence of WoRMS, we are witnessing improved communication within the scientific community, and anticipate increased taxonomic ...
  48. [48]
  49. [49]
    [PDF] The first mitogenome report of Dimorphostylis asiatica Zimmer 1921 ...
    Jan 3, 2025 · This study determined the first complete mitogenome of hooded shrimp sequenced from Dimorphostylis asiatica (Cumacea: Diastylidae). D. asiatica ...Missing: taxonomy count
  50. [50]
    Morphology of the haemolymph vascular system in Tanaidacea and ...
    Tanaidacea and Cumacea are crucial for understanding the phylogenetic relationships of “core group” peracarids. Here, the haemolymph vascular system in ...