Tag: American eel

  • What’s in Tail? What the Shapes of Caudal Fins can tell us about a fish

    What’s in Tail? What the Shapes of Caudal Fins can tell us about a fish

    Watch fish for more than a few minutes, and something begins to stand out.

    They do not all move through the water the same way.

    A school of mullet slips across a creek with steady, effortless motion. A red drum twists through flooded marsh grass, turning between oyster clumps where shrimp and juvenile crabs have nowhere left to hide. A southern flounder erupts from the sand where, a moment before, there seemed to be nothing at all. Farther offshore, a little tunny slices through baitfish near the surface, while a cownose ray appears to fly beneath the water with its long tail trailing quietly behind.

    The water is the same.

    The rules of physics are the same.

    But each animal has answered those rules differently.

    A fish’s tail is far more than the end of its body. It is a record of how that fish survives. It can reveal where the fish spends its time, how it captures prey, how it escapes predators, how much energy it can afford to spend moving, and the role it fills within the larger ecosystem.

    Like wings on birds or feet on mammals, the tail, known as the caudal fin, carries the shape of a life lived in a particular place.

    To read a tail is to begin reading how fish use the water differently.

    Every Fish Faces the Same Challenge

    Moving through water is expensive.

    Water is nearly 800 times denser than air (Vogel, 1996). Every sweep of the body pushes against it. Every turn creates resistance. Every burst of speed requires energy that cannot later be used to grow, migrate, reproduce, or avoid becoming another animal’s meal.

    No fish escapes those limits.

    Instead, each species works within them.

    A fish moves as muscles contract in waves along the body, transferring force toward the caudal peduncle, the narrow region where the body meets the tail (Borazjani & Daghooghi, 2013; Sfakiotakis et al., 1999). From there, energy reaches the caudal fin. Each sweep of the tail pushes against surrounding water, creating pressure differences and rotating vortices that help produce forward thrust (Borazjani & Daghooghi, 2013; Maia et al., 2021).

    Before the tail ever pushes against the water the body has already done the work. The caudal peduncle is where that power is passed to the tail. | Image credit: Louisiana Department of Wildlife & Fisheries
    Before the tail ever pushes against the water the body has already done the work. The caudal peduncle is where that power is passed to the tail. | Image credit: Louisiana Department of Wildlife & Fisheries

    The tail is where the body’s power meets the water.

    Yet the same basic problem has produced many different solutions.

    Some fish are built for steady cruising. Others are built for sudden bursts. Some rely on tight turns. Some barely use the tail in the way we expect at all.

    There is no perfect fish tail.
    There are only tails shaped by different lives.

    A fish that spends its life crossing miles of open water faces different problems than one weaving through flooded marsh grass. A predator that depends on surprise needs something different than one chasing baitfish across the surface. Even the bottom itself asks different things of the animals that live there.

    Every tail that follows is one answer to those demands.

    The Tail Never Works Alone

    It is easy to focus on the tail because it is the most visible part of the movement.

    But no fish swims with its tail alone.

    The body determines how much drag the fish creates. The muscles generate the force. The caudal peduncle channels that force into the tail. Pectoral fins stabilize, steer, brake, or produce lift. Even the stiffness of the body changes how efficiently motion travels through the water.

    A tuna is not fast because of its crescent tail alone. Its narrow caudal peduncle, streamlined body, stiff swimming motion, finlets, and powerful muscle arrangement all work together to conserve energy while moving through open water.

    A red drum is not shaped for that same kind of movement. Its broader body, muscular peduncle, and less deeply forked tail serve a different purpose in a different landscape.

    A flounder’s tail only makes sense after the rest of the fish has flattened into the bottom.

    A shark’s tail cannot be understood without its pectoral fins.

    The tail is part of a system (Lauder & Drucker, 2004; Sfakiotakis et al., 1999).

    And that system is built around how the animal earns its living.

    Built to Cross Open Water

    Away from oyster reefs, marsh grass, docks, and submerged roots, the water opens.

    There are fewer places to hide.

    Prey may be scattered across greater distances.

    Movement becomes less about turning around obstacles and more about conserving energy across space.

    Watch Spanish mackerel feeding from a pier in late summer and they rarely seem to stop moving. The same is true for little tunny exploding through bait schools just beyond the breakers. Their tails were never built for hovering over one patch of water. They were built for finding the next meal, wherever it happens to be.

    Spanish mackerel, bluefish, Atlantic bonito, little tunny, and many jacks carry deeply forked or crescent-shaped tails (Lighthill, 1971; Song et al., 2020; Tack & Gemmel, 2022). Their narrow caudal peduncles and relatively stiff bodies limit unnecessary side-to-side motion, directing more of each tail beat into forward movement. The tall, narrow shape of the tail also reduces drag while allowing fish to maintain speed through repeated strokes.

    Their speed is impressive.

    But efficiency is the deeper story.

    Out beyond the marsh and inlets, where prey may be separated by miles rather than feet, every unnecessary movement matters. A tail that saves a small amount of energy with each stroke can eventually become another mile traveled, another school of baitfish reached, another day survived.

    In open water, the tail becomes a tool of endurance.

    Built for Split-Second Decisions

    The marsh asks something different.

    As the tide rises, red drum move into flooded Spartina where shrimp, juvenile blue crabs, and small fishes scatter through stems and oyster clusters. Sheepshead pick around pilings and shell edges. Black sea bass patrol reefs where every ledge may conceal prey or danger. Oyster toadfish wait in crevices, relying less on pursuit than on the suddenness of their strike.

    These fishes do not all carry identical tails or hunt in exactly the same way.

    None of them needs to cross open water all day.

    They need control.

    Every oyster shell, grass stem, piling, and dock creates another obstacle. The fish that succeeds here is rarely the fastest. It is the one that can change direction before its prey—or predator—does.

    Compared with the narrow crescents of open-water cruisers, rounded, truncate, and slightly emarginate tails move their broader bodies through water (Song et al., 2020; Tack & Gemmel, 2022). That creates more drag, but it also allows the fish to push hard against the water at low speeds, accelerate more quickly, stop abruptly, and turn within confined spaces. A broad, muscular caudal peduncle helps deliver power immediately rather than conserving energy over long distances.

    Other fins join in. Pectoral fins brake and steer. The body bends around obstacles. The tail supplies the final shove that send the fish around an oyster clump or into a pocket of flooded grass.

    In a maze of oyster reefs, roots, pilings and marsh grass, turning one body length tighter can matter far more than maintaining speed over ten miles.

    This type of tail reflects that reality.

    Built to Become the Bottom

    Few fishes rewrite the body plan as dramatically as a southern flounder.

    It does not begin life looking like the fish we recognize.

    As a larva, it swims upright with one eye on each side of the head, shaped much like other young fishes drifting through the water column. Then the transformation begins.

    One eye slowly migrates across the skull (Okada et al., 2003). The body flattens. Pigment concentrates on what becomes the upper surface. The fish settles onto one side and begins living as part of the seafloor (Midway et al., 2024).

    Most people notice the eyes.

    But the tail changed jobs, too.

    A flounder does not need a tail built for constant cruising. It needs one capable of launching a body that has already disappeared. The fish may remain motionless on sand or mud until a shrimp or small fish comes close enough. Then the body bends, the tail snaps, and the flounder surges forward in a short, explosive burst before settling back into the bottom (Midway et al., 2024).

    Its tail serves as surprise.

    On an open sandy bottom, there may be no grass, reef, or submerged root behind which a predator can wait. The flounder solves that problem by matching the bottom beneath it, sometimes shifting its color and pattern as the surrounding sediment changes.

    Rather than finding cover, the flounder became the cover.

    Its tail became the spring that launches an attack from a place prey never realized was occupied.

    Built for Places Others Cannot Reach

    Some fish survive by entering spaces where others cannot follow.

    American eels move through tidal creeks, undercut banks, submerged roots, culverts, marsh edges, and dark spaces beneath docks where a stiffer fish body would become a liability.

    Their dorsal, caudal, and anal fins merge into one continuous ribbon (Stin et al., 2024). Instead of relying on distinct tail beats alone, waves of motion travel along much of the body, allowing the eel to bend through narrow openings and complex structure.

    Speed is not the point.

    Access is.

    Yet, the same flexible body that lets an eel disappear beneath roots or slip through a flooded marsh also carries it across an ocean.

    American eels hatch in the Sargasso Sea and reach the North American coast after drifting within ocean currents as transparent, leaf-shaped larvae (Secor, 2015; Tsukamoto, 2009). They enter estuaries as glass eels and gradually develop the long, muscular bodies that will carry them through tidal creeks, rivers, ponds, and wetlands., 

    Years later, mature eels reverse that journey. They leave inland and coastal habitats and return toward the Sargasso Sea to spawn.

    They do not cross ocean like tuna. Rather that holding most of the body stiff and driving a narrow tail rapidly from side to side, an eel sends broad waves of motion along its body (Stin et al., 2024). That swimming style creates more resistance at high speeds, but it remains effective over long distances and across changing environments.

    One body design solves two very different problems: it allows the eel to move through open water, climb through a watershed, pass beneath roots and around obstructions; and the other allows it to eventually return to sea.

    Its strength is not mastery of one kind of water. It is the ability to keep moving as the water changes. Flexibility opens doors that speed never could.

    When the Tail Stops Being the Engine

    At first glance, rays appear to have dramatic tails.

    Atlantic stingrays, southern stingrays, and cownose rays all trail long, whip-like tails behind wide bodies moving through coastal waters, tidal creeks, sounds, and inlets.

    But watch one closely and the story changes.

    The tail is not doing most of the swimming.

    The large pectoral fins are (Rosenberger, 2001).

    Watch a cownose ray passing beneath the surface seems to fly through the water. Each pointed wing rises and falls in a smooth stroke, producing the thrust that carries the ray forward. It’s tail follows behind, sometimes so quietly that it appears almost disconnected from the movement of the animal.

    Closer to the bottom, Atlantic and southern stingrays use their broad discs differently. Their pectoral fins ripple or undulate as they move over sand and mud, where they can settle into the sediment and wait nearly unseen. Once propulsion shifted from the tail to the expanded pectoral fins, the tail was no longer required to serve as the main engine (Rosenberger, 2001).

    But it did not become useless.

    These rays carry one or more serrated, venomous spines on or near the base of the tail. The spine is not used to hunt. It is defensive, capable of discouraging a shark or other predator that attacks from behind or above (Maia et al., 2012).

    The placement of the tail also reflects how each ray lives. Bottom-dwelling stingrays can lift and swing it when threatened, especially when pressure from above traps the animal against the sediment. Cownose rays spend more time actively swimming with the tail streaming behind their wing-driven bodies.

    The engine moved into the wings.

    The tail was free to serve another purpose.

    When Lift Matters

    Sharks carry another kind of solution.

    Unlike most bony fishes, sharks do not have a swim bladder to help regulate buoyancy (Maia et al., 2012). Their position in the water depends on several features working together: an oil-rich liver, body shape, pectoral fins, and the tail.

    In many sharks, the upper lobe of the caudal fin is longer than the lower lobe. This heterocercal tail helps generate thrust while also influencing lift and body angle as the shark moves forward (Thomson, 1976; Maia et al., 2012). The pectoral fins, and in hammerhead sharks – their heads, help balance those forces, acting like underwater wings that stabilize the animal in the water column.

    A shark’s tail and pectoral fins are not separate stories.

    They are part of the same swimming system. But that system is adjusted for different lives.

    A bull shark moving through a muddy estuary needs power at lower speeds and enough control to follow prey through channels, shorelines, and changing currents. A blacktip chasing anchovies near the breakers depends more heavily on speed and rapid changes in direction as a bait school folds and scatters around it. Atlantic sharpnose sharks remain active over sandy bottoms and within coastal food webs where they pursue fishes, shrimp, squid and other available prey.

    Their tails share the same basic shark pattern, but they do not carry identical proportions. Differences in lobe length, stiffness, body shape, and musculature change how each species uses the pattern to transform into movement.

    Farther offshore, the thresher shark pushes the design toward an extreme. Its greatly elongated upper tail lobe is not only part of the swimming system; it is also a hunting tool. The shark accelerates toward schooling fish and sweeps its tail through the water, gathering the school into a tighter pod to consume more fish at a time (Oliver et al., 2013). 

    Even among sharks, the tail is not one solution.

    It changes as the shark’s habitat, prey, and method of hunting change with it.

    Every Tail Has a Price

    If one tail shape were truly best, fish would all look much more alike.

    They do not.

    Every tail carries a trade-off.

    Evolution does not build perfect designs (Lauder & Drucker, 2004; Secor, 2015).

    It builds workable compromises.

    Every advantage comes with something surrendered. A narrow, deeply forked tail can conserve energy across open water but cannot push against the water at low speeds like a broad, rounded tail. A fish built to spin through marsh grass cannot match the endurance of a pelagic hunter. A flattened body and explosive tail make the flounder a nearly invisible ambush predator, but not a long-distance cruiser. The eel’s flexibility opens routes through an entire watershed, even though it cannot slice through water like a mackerel.

    These are not failed versions of some ideal fish. They are specialists. Nature is full of specialists because environments reward specialists.

    Each has inherited a way of moving that makes certain opportunities possible while placing others beyond reach. Over generations, the fish that moved well enough to feed, escape, migrate, and reproduce within a particular landscape passed that arrangement forward.

    A tail is therefore more than a solution to water resistances. It is a compromise between everything an animal might do and the few things it must do well. Not a movement toward perfection – but towards belonging.

    Reading the Water Differently

    The next time you look at a fish, try not to begin with color.

    Watch how it moves.

    A steady glide across open water tells one story. A sudden turn among oyster shells tells another. A burst from the sand reveals a predator that survived by disappearing. A ray moving like a winged shadow reminds us that the tail is not always the engine. A shark’s movement shows how lift, thrust, and balance must work together in an animal without a swim bladder.

    Long before we know a fish’s name, its movement has already begun telling us where it lives, how it hunts, how it escapes, and how it fits into the larger food web.

    A tail gives us a place to begin..

    It is the visible record of problems solved repeatedly: distances crossed, obstacles cleared, prey overtaken, predators avoided, and energy conserved..

    Once we recognize these patterns, we no longer only see a fish passing through water. 

    We begin to see the life that shaped it.

    By the time a fish passes from view, its tail has already revealed the story of the life it was built to live. | Image credit: Explore.org, Frying Pan Tower
    By the time a fish passes from view, its tail has already revealed the story of the life it was built to live. | Image credit: Explore.org, Frying Pan Tower

    References

    Borazjani, I., & Daghooghi, M. (2013). The Fish tail motion forms an attached leading edge vortex. Proceedings of the Royal Society B: Biological Sciences, 280(1756), 20122071. https://doi.org/10.1098/rspb.2012.2071

    Lauder, G., & Drucker, E. (2004). Morphology and experimental hydrodynamics of fish fin control surfaces. IEEE Journal of Oceanic Engineering, 29(3), 556-571. https://doi.org/10.1109/joe.2004.833219

    Lighthill, M. J. (1971). Large-amplitude elongated-body theory of fish locomotion. Proceedings of the Royal Society of London. Series B. Biological Sciences, 179(1055), 125-138. https://doi.org/10.1098/rspb.1971.0085

    Maia, A. M., Wilga, C. A., & Lauder, G. V. (2012). Biomechanics of Locomotion in Sharks, Rays, and Chimeras. In Biology of Sharks and Their Relatives (2nd ed.). CRC Press.

    Midway, S. R., Scharf, F. S., Dance, M. A., Brown-Peterson, N. J., Ballenger, J. C., Beeken, N. S., Borski, R. J., Darden, T. L., Erickson, K. A., Farmer, T. M., Fincannon, A., Godwin, J., Graham, P. M., Green, J. L., Hershey, H., Kiene, D., Lee, L. M., Loeffler, M. S., Markwith, A., … White, S. B. (2024). Southern flounder: Major milestones and remaining knowledge gaps in their biology, ecology, and fishery management. Reviews in Fisheries Science & Aquaculture, 32(3), 450-478. https://doi.org/10.1080/23308249.2024.2341017

    Okada, N., Takagi, Y., Tanaka, M., & Tagawa, M. (2003). Fine structure of soft and hard tissues involved in eye migration in metamorphosing Japanese flounder (Paralichthys olivaceus). The Anatomical Record Part A: Discoveries in Molecular, Cellular, and Evolutionary Biology, 273A(1), 663-668. https://doi.org/10.1002/ar.a.10074

    Oliver, S. P., Turner, J. R., Gann, K., Silvosa, M., & D’Urban Jackson, T. (2013). Thresher sharks use tail-slaps as a hunting strategy. PLoS ONE, 8(7), e67380. https://doi.org/10.1371/journal.pone.0067380

    Rosenberger, L. J. (2001). Pectoral fin locomotion in Batoid fishes: Undulation Versus oscillation. Journal of Experimental Biology, 204(2), 379-394. https://doi.org/10.1242/jeb.204.2.379

    Secor, D. H. (2015). Migration ecology of marine fishes. JHU Press.

    Sfakiotakis, M., Lane, D., & Davies, J. (1999). Review of fish swimming modes for aquatic locomotion. IEEE Journal of Oceanic Engineering, 24(2), 237-252. https://doi.org/10.1109/48.757275

    Song, J., Zhong, Y., Du, R., Yin, L., & Ding, Y. (2020). Tail shapes lead to different propulsive mechanisms in the body/caudal fin undulation of fish. Proceedings of the Institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering Science, 235(2), 351-364. https://doi.org/10.1177/0954406220967687

    Stin, V., Godoy‐Diana, R., Bonnet, X., & Herrel, A. (2024). Form and function of anguilliform swimming. Biological Reviews, 99(6), 2190-2210. https://doi.org/10.1111/brv.13116

    Tack, N. B., & Gemmell, B. J. (2022). A tale of two fish tails: Does a forked tail really perform better than a truncate tail when cruising? Journal of Experimental Biology, 225(22). https://doi.org/10.1242/jeb.244967

    Thomson, K. S. (1976). On the heterocercal tail in sharks. Paleobiology, 2(1), 19-38. https://doi.org/10.1017/s0094837300003286

    Thomson, K. S., & Simanek, D. E. (1977). Body form and locomotion in sharks. American Zoologist, 17(2), 343-354. https://doi.org/10.1093/icb/17.2.343

    Tsukamoto, K. (2009). Oceanic migration and spawning of anguillid eels. Journal of Fish Biology, 74(9), 1833-1852. https://doi.org/10.1111/j.1095-8649.2009.02242.x

    Vogel, S. (1996). Life in moving fluids: The physical biology of flow (2nd ed.). Princeton University Press.

    Wilga, C. D., & Lauder, G. V. (2002). Function of the heterocercal tail in sharks: Quantitative wake dynamics during steady horizontal swimming and vertical maneuvering. Journal of Experimental Biology, 205(16), 2365-2374. https://doi.org/10.1242/jeb.205.16.2365

  • The Fish That Follows the Tide: American Eels Along the Waters of Onslow County

    The Fish That Follows the Tide: American Eels Along the Waters of Onslow County

    Most people who see an American eel (Anguilla rostrata) for the first time do not think they are looking at a fish at all.

    They appear suddenly in shallow blackwater creeks, beneath dock lights, beside culverts after rain, or slipping through spartina grass at dusk. Long and muscular, they move more like a snake than something belonging to a river. In muddy water they are usually seen only in fragments — a curve disappearing beneath tannin-dark current, or a ripple crossing the surface where something alive passed moments earlier.

    Along the coast of Onslow County, American eels have likely moved through these waters longer than the marshes themselves have held their present shape. They pass through tidal creeks, estuaries, freshwater streams, flooded ditches, cypress swamps, and inland rivers, connecting habitats that often seem separate to us but function together as one living system.

    And almost no one realizes that every eel seen here began life far out at sea.

    Born Beyond the Horizon

    The life cycle of the American eel along the waters of  Onslow County spans thousands of miles, linking the Sargasso Sea, Atlantic coast, estuaries, marshes, rivers, and inland lakes through a single migration that can last decades. | Image credit: U. S. Fish and Wildlife Service
    The American eel’s life cycle spans thousands of miles, linking the Sargasso Sea, Atlantic coast, estuaries, marshes, rivers, and inland lakes through a single migration that can last decades. | Image credit: U. S. Fish and Wildlife Service

    Far offshore, beyond the continental shelf and beyond the visible horizon of North Carolina’s beaches, lies the Sargasso Sea — a warm, rotating gyre of Atlantic water bordered by ocean currents rather than land. This is where American eels spawn, though much of their reproduction still remains one of the great biological mysteries of the Atlantic Ocean (Béguer‐Pon et al., 2015).After hatching, eel larvae drift for months within the Gulf Stream. At this stage they do not yet resemble eels. They are thin, transparent, leaf-shaped organisms called leptocephali, nearly invisible against the open ocean (Wang & Tzeng, 2000).

    Leptocephali, the larval stage of the American eel, drift within the Atlantic Ocean currents for months before transforming into glass eels and entering coastal estuaries. | Image credit: hunterefs, iNaturalist
    Leptocephali, the larval stage of the American eel, drift within the Atlantic Ocean currents for months before transforming into glass eels and entering coastal estuaries. | Image credit: hunterefs, iNaturalist

    As they approach the coastline, their bodies begin to transform. The broad leaf-like shape narrows into the familiar eel form. Their organs reorganize. Their muscles strengthen. By the time they arrive in estuaries along the Atlantic coast, they have become what scientists call glass eels — small, transparent juveniles that move into tidal rivers and marshes under the cover of darkness (Starks, 2026).

    Glass eels, the transparent juvenile stage of the American eel, gather along coastlines before moving inland through estuaries, marshes, and rivers. | Image credit: W. O’Connor
    Glass eels, the transparent juvenile stage of the American eel, gather along coastlines before moving inland through estuaries, marshes, and rivers. | Image credit: W. O’Connor

    At night in late winter and spring, these glass eels enter coastal waters by the thousands. Most people never notice them. But beneath bridge lights and along quiet marsh edges, tiny transparent bodies gather against the current, moving inland on tides that have repeated for thousands of years.

    Some settle into estuaries. Others continue far upriver into freshwater creeks and reservoirs. A single eel may spend decades there before returning once again to the open Atlantic.

    As they continue growing, American eels pass through a series of color changes that reflect different stages of their life cycle. Newly arrived glass eels are nearly transparent. Within months they develop pigmentation and become elvers, often showing olive, brown, or yellowish coloration. During the longest phase of their lives they are known as yellow eels, displaying yellow-brown to olive sides with lighter undersides while feeding and growing in estuaries, rivers, and wetlands for years or even decades (ASMFC, 2017; Haro et al., 2000). As they mature and prepare for their return migration to the Sargasso Sea, they transform into silver eels. Their bodies darken along the back, their sides become silvery, and their eyes enlarge — adaptations that help prepare them for life in the open ocean and their final spawning migration (Haro et al., 2000; Tesch & White, 2008).

    American eels change dramatically throughout their lives, from transparent leptocephali and glass eels to yellow eels in estuaries and rivers before developing the silver coloration of spawning adults returning to the Sargasso Sea. | Image credit: C. Bowser & R. Papish
    American eels change dramatically throughout their lives, from transparent leptocephali and glass eels to yellow eels in estuaries and rivers before developing the silver coloration of spawning adults returning to the Sargasso Sea. | Image credit: C. Bowser & R. Papish

    The Marsh at Night

    American eels are largely nocturnal, which means many people living along the coast rarely realize how common they are.

    After sunset, they emerge from submerged roots, oyster reefs, marsh undercuts, rock piles, and mud-bottom channels to feed. In tidal creeks around Onslow County, they move through habitats that shift constantly with salinity, rainfall, temperature, and tide.

    Unlike many fish that specialize in one narrow environment, eels are remarkably flexible. They can tolerate freshwater, brackish estuaries, and saltwater marsh systems throughout different stages of life (Able, 2005).

    This flexibility makes them important ecological connectors between habitats.

    An eel feeding in an estuary may consume shrimp, small fish, crabs, worms, insect larvae, and carrion. Larger eels become predators capable of feeding on nearly anything they can overpower. In turn, they become prey themselves for river otters, wading birds, striped bass, sharks, alligators, ospreys, and larger coastal predators (MacGregor et al., 2009).

    What appears at first to be a strange solitary fish is actually woven through multiple levels of the food web.

    American eels help transfer energy through the ecosystem, linking marsh invertebrates, small fish, and larger predators with the waters of Onslow County. | Image credit: A. Mitchell
    American eels help transfer energy through the ecosystem, linking marsh invertebrates, small fish, and larger predators with the waters of Onslow County. | Image credit: A. Mitchell

    Ancient Currents and Modern Coastlines

    And in a much deeper sense, eels also connect modern coastal ecosystems to ancient worlds that existed long before humans reshaped shorelines. Their lineage stretches back tens of millions of years, surviving repeated shifts in sea level, climate, and continental geography. Long before beach renourishment projects, before the Outer Banks existed in their present form, and even before many modern mammals evolved, ancestral eels were already moving between oceans and coastal rivers (Inoue et al., 2010).

    That timeline overlaps surprisingly well with the broader environmental history explored in my earlier posts. During the Carboniferous Period over 300 million years ago, vast swamp forests covered portions of what would eventually become eastern North America, laying down the organic material that later formed coal deposits (Sahney et al., 2010). The world looked entirely different then, but the shallow coastal environments that support migratory fish today evolved from ancient marine systems shaped across those immense spans of geologic time.

    By 66 million years ago — around the end-Cretaceous extinction that eliminated non-avian dinosaurs — early eel relatives already existed in ancient seas (Near et al., 2012). Modern American eels evolved much later, but their migratory strategy reflects something extraordinarily old: the continual exchange between ocean currents, estuaries, rivers, and wetlands.

    Fossil eels resembling modern species appear in the geologic record tens of millions of years ago, reflecting a lineage that has persisted through changing oceans, shifting coastlines, and repeated cycles of environmental change. | Image credit: Fossil Forum
    Fossil eels resembling modern species appear in the geologic record tens of millions of years ago, reflecting a lineage that has persisted through changing oceans, shifting coastlines, and repeated cycles of environmental change. | Image credit: Fossil Forum

    Beach renourishment, by contrast, exists on an almost microscopic timescale geologically. Most projects reshape shorelines over years or decades, temporarily altering sediment movement, inlet dynamics, turbidity, and nearshore habitat. Eels are resilient enough to survive natural coastal change — hurricanes, shifting barrier islands, overwash events, and migrating inlets that have continually transformed the Atlantic coast. But human-driven shoreline modification can compress those disturbances into shorter, more frequent intervals that affect how juvenile eels enter estuaries and move inland.

    So while beach renourishment itself is modern, the habitats it alters are part of a coastal system assembled over millions of years — one that species like the American eel have been navigating since long before the present coastline existed.

    Their ecological importance is recognized even within local fisheries. In many areas, crab pots are now designed with eel escapement openings that allow smaller American eels to exit traps rather than become unintended bycatch. These modifications help reduce eel mortality while acknowledging the species’ role in maintaining healthy estuarine ecosystems.

    The Animal That Connects Rivers

    Many coastal species remain tied to a single environment. Oyster reefs remain fixed in estuaries. Marsh periwinkle snails cling to grass stems. Flounder shift between nearshore and estuarine waters but remain marine fish.

    American eels move between worlds.

    A juvenile eel may travel from offshore Atlantic currents into a coastal marsh creek, then into freshwater rivers hundreds of miles inland before eventually returning to the Sargasso Sea years later to spawn. Very few animals along the Atlantic coast connect ecosystems across such enormous distances.

    American eels connect ecosystems across the Atlantic Ocean, beginning life in the Sargasso Sea before dispersing into estuaries, rivers, lakes, and wetlands throughout eastern North America. } Image credit: L. Poirier
    American eels connect ecosystems across the Atlantic Ocean, beginning life in the Sargasso Sea before dispersing into estuaries, rivers, lakes, and wetlands throughout eastern North America. } Image credit: L. Poirier

    Because of this, eels transport energy and nutrients between habitats that otherwise remain loosely connected. Predators feeding on eels receive marine-derived nutrients that originated far offshore. When adult eels migrate back toward the Atlantic, they carry inland energy back toward the ocean system (Jessop et al., 2020).

    Even freshwater mussels depend upon them.

    Several mussel species release microscopic larvae called glochidia that temporarily attach to fish hosts while developing. Research in Mid-Atlantic rivers has shown that American eels are one of the most successful hosts for some native mussel species, helping sustain mussel populations throughout eastern river systems (Schwalb et al., 2013).

    So beneath the surface, the eel is doing more than surviving for itself. It is helping move life through the watershed.

    What Happens When Eels Decline

    Globally, the American eel is listed as “endangered, but stable” on the IUCN Red List because of long-term population declines across much of its range (IUCN, 2023). In the United States, however, the U. S. Fish and Wildlife Service has concluded the species does not currently require federal protection under the Endangered Species Act. The Atlantic States Marine Fisheries Commission determined that their populations are largely depleted in U. S. waters and have recommended continued monitoring of their populations because their life cycle depends upon the health and connectivity of both freshwater and marine environments (ASMFC, 2026).

    For centuries, rivers along the Atlantic coast held far larger eel populations than they do today.

    In many parts of the eastern United States, dams and hydroelectric turbines block migration routes and kill adults moving back downstream toward the ocean. Those barriers have severely reduced eel access to inland habitat across major river systems (Haro et al., 2000).

    Onslow County is different.

    The New River estuary is not fed by large mountain rivers or controlled by dams upstream. It is a relatively closed coastal watershed shaped instead by rainfall, groundwater springs, blackwater creeks, tidal exchange, runoff, and low-gradient streams winding through wetlands and forests. Here, eel movement depends less on navigating massive river barriers and more on the health and connectivity of marshes, culverts, floodplains, tidal creeks, and shallow estuarine habitat.

    That makes local environmental changes especially important.

    Wetland loss, shoreline hardening, stormwater runoff, dredging, declining water quality, and altered tidal flow can fragment the smaller pathways eels rely upon throughout the watershed. Even undersized culverts or poorly designed drainage structures can interrupt movement between creeks and flooded wetlands during critical migration periods.

    Barrier islands also shape the system eels enter.

    Along the Onslow coast, shifting inlets, overwash events, and beach renourishment projects continually reshape the boundary between ocean and estuary. In some cases, renourishment can temporarily increase turbidity, bury nearshore habitat, or alter tidal exchange patterns affecting juvenile eel recruitment into estuarine creeks. At the same time, healthy barrier islands and functioning marsh systems help buffer salinity extremes, reduce erosion, and maintain the sheltered estuarine habitat young eels depend upon once they arrive from the Atlantic.

    Because eels use so many habitats, their decline spreads outward through the ecosystem in ways people may not immediately notice.

    River otters lose an important prey source in some waterways. Mussel reproduction declines where host fish disappear. Predators that once relied seasonally on eels shift toward other prey. The disappearance of a species that connects marshes, rivers, estuaries, and offshore currents weakens the ecological ties between those environments.

    And unlike species that reproduce quickly, eels recover slowly.

    An eel living beneath a dock in coastal North Carolina may already be older than the child fishing above it. Some females remain inland for decades before ever returning to spawn (Haro et al., 2000). Every interruption between inland waters and the sea disrupts a migration pattern older than modern coastlines themselves.

    The Fish Most People Never See

    On warm summer nights in coastal North Carolina, much of the estuary moves unseen.

    Shrimp rise into the water column. Rays cross shallow mudflats beneath darkness. Juvenile fish gather around dock lights. Crabs emerge from oyster beds to forage with the tide.

    And somewhere below that shifting water, an eel moves silently between habitats, carrying the Atlantic inland and returning inland waters back toward the sea.

    Most people standing along the shoreline will never know it is there.

    But the marsh still holds the traces of its passage. So do the river otters weaving through flooded reeds and the herons stalking the quiet creek edges at dusk.

    The tidal creeks of Onslow County continue shaping themselves around an animal whose life still stretches beyond much of human observation — from blackwater rivers to the open Atlantic, and back again.

    Hidden beneath dark water and shifting tides, American eels remain one of the Atlantic coast's most remarkable connections between ocean, estuary, and river. | Image credit: E. Smith, iNaturalist
    Hidden beneath dark water and shifting tides, American eels remain one of the Atlantic coast’s most remarkable connections between ocean, estuary, and river. | Image credit: E. Smith, iNaturalist

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