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Author Archives: George Rogers

Prickly pears are everywhere arid(plus), and good for lotsa stuff

Opuntia (many!) species

Cactaceae, the Cactus Family of course


Work time in a scrub area last Tuesday was extra cheery due to the sunshine yellow prickly pear blooms as fancy as roses, lovely as a flower can be.    Bet they help neighboring flowers of other species become pollinated by drawing pollinators from round about.  

All photos today by John Bradford

Less  cheerful, trudging through a scrub you suffer a hot stab to your shin, look down, and not only is there a cactus spine impaling your flesh, but attached to the nasty spear is a small stem segment.   Yanking it out hurts, but congratulations, you just discovered a key to prickly pear distribution.    Those detached pads cover the broken edge quickly with mucilege goo that hardens like epoxy,  then the pad can live eternally to reroot wherever it shakes loose.     Pad relocation has something to do with the global prickly pear presence (native in the New World, introduced in the Old World):

Map from Plants of the World online

Some Opuntia species are so dedicated to stem-piece dispersal they have stopped producing fertile seeds altogether.  Back in 1892 Arizona naturalist J.W. Toumey wrote about the spines propping the broken-off stem pads  above the ground.   That’s handy:  helps with cooling, keeps ground bugs and fungi off, and makes the pad more likely to grab a passing beast.   To complicate regeneration further, some populate their seeds with a clonal piece of the mother plant instead of an actual embryo.   Even more oddly, the fruits can take root directly even if the seeds they contain don’t. 

Most opuntias and close relatives have chromosomal aberrations to interfere with normal sexual processes.   Although untested for cacti so far as I know, there is a general association between ancient cultivation and chromosomal oddness mixed with clonality.   Might apply to prickly pears.

On the downside, cochineal insects grown on cultivated prickly pears for purple dyes have escaped detrimentally onto our native prickly pears, a topic covered in a prior blog.

Human uses for prickly pears are old, widespread, and diverse, so you can rest assured long-ago people moved them around.   There is evidence in Mexico of ancient prickly pear domestication, that not a big surprise. Plants that are easy to propagate with edible stems and fruits, with 100 additional uses happy to grow in deserts are a gift to cherish.  That map above shows how prickly pears have gotten around the Old World, in some places  being pests.  But when not pests, in addition to tasty, water-filled fruits and stems, the vast medicinal uses are too diverse to list. Pick any ailment, some you never heard of.   There are prickly pear wines and brandies, and pancakes.  Have you seen expensive hydrogels added to garden soil to retail moisture?  Prickly pears are the original wild hydrogel, long used in Italy especially for growing cucumbers.  There is modern  commercial interest in PP neutraceuticals, whatever a neutraceutical is.  Remember that quick-hardening mucilage?   Cactus pads have been used as spreaders to apply the smooth mucilage to boat hulls to make them glide with ease.  Uses as sewing needles and as field medical probes are obvious and true.   More interestingly, ancient peoples found bundles of the spines useful as a combination needle and paintbrush for tattooing.  Like an old-school smallpox vaccination.  

Opuntia stricta. Explain this shotgun distribution! (Map from BONAP).

 
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Posted by on April 4, 2026 in Uncategorized

 

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Combleaf Mermaid Weed, Weird in the Wetlands

Combleaf Mermaid Weed, Weird in the Wetlands

Proserpinaca pectinata

Haloragaceae


What Linnaeus had in mind in 1754 when he coined the name Proserpinaca is its first mystery. A leading possibility, not my original idea, is Proserpina, Roman goddess of springtime and of the underworld. The plant  Proserpinaca does rise up from the underworld mud in the springtime like a little green goddess mermaid.  Pectinata means roughly, “looks like a fish skeleton.”

Proserpinaca pectinata with fruits by John Bradford.

You don’t have to work hard in dried out marshbottom mud  to find Proserpinaca pectinata rising, creeping, flowering, and fruiting.    We have two (+) species of Proserpinica around here, but let’s focus on just one.   I have no particular point to make about P. pectinata, except that it is shy,  odd,  and poorly known.

In flower, by JB. Pinkish stigmas between yellow anthers.

Looks like it is getting its own yellow pollen onto the pink stigmas.

Odd thing 1.  The mermaid lives in two separate regions.    The main region is semi-coastal from New England, across Florida and  Cuba to Texas.   The curious second region is central Tennessee.   A skeptic might say, well, some bird probably dropped it there and it spread.  Agreed!  But birds probably drop its little fruits all over the place, so why “take hold” and spread just in the center of Tennessee?   I dunno.

Map 1999 by botanist P. Catling. What’s going on in Tennessee?

Odd thing 2.  When the marsh bottom dries Proserpinaca can explode into a green carpet of zillions of crowded individuals covering a lot of space.   How does it do that?    The fruits are hard, floaty little “nutlets,” and clearly get around.  But at any given moment there don’t seem to be enough of them to take over, and you don’t see them sprouting  on the mud anyhow.   So where’s all that massive new mermaid coming from?   Old fruits accumulating dormant  in the mud? (probably)  Stem and root fragments breaking apart and floating around? (probably, the stems root where they touch).   Surviving plants that persisted during the last  inundation?  (probably).   Stem-creep? (probably).  That’s a lot of probablys.  Wonder what the main source of the springtime mermaid explosion is.   Maybe not even in my list.

Prolific!

Odd thing 3. Itty bitty flowers having no appreciable petals.   The flowers have three pink fuzzy pollen-receiving stigmas and three yellowish anthers releasing pollen.  The entire plant being short, the flowers are semi-hidden near the ground. Googling to discover the pollinators yields three (not necessarily exclusive) assertions by folks who obviously do not really know:

  1. Wind pollination (I doubt that, as the flowers are hidden down out of the wind; they tend to be relatively few, and they don’t seem well “designed” for putting pollen in the wind.)     ((But never say never.))
  2. Unknown insect visitors.  (Bet that occurs. Would be fun to catch visitors red-handed.)
  3. Self-pollination (I like that possibility:   even in todays photo you can see self-pollen slopping onto the stigmas.  Self-pollination would explain why the  flowers reliably form fruits.)

Odd thing four:  The leaves  have tiny white doohickies directly in the angle where the leaflet joins the central leaf stalk.  The little attachments are made of several cells, and under a microscope look like a cluster of grapes.   These are a mystery.  Water lilies have somewhat similar structures, called hydropotes (“water drinkers”), but those probably do not drink water, and they too are of unknown function.   Many plants have water-release “valves” called hydathodes at the ends of veins. Could be, but the placement and appearance are very iffy. Anybody’s guess can be the function of the tiny appendages, if any.  Something to do with water uptake and output, or dissolved material?  Feeding tiny insects such as ants, and if so, why?   Help draw visitors to the flowers? Make the leaves taste like $#@#@! to leaf eaters?    Breaking free and micro-sprouting?

Thingamajigs at leaflet bases

Thingamajg highly magnified

 
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Posted by on March 27, 2026 in Uncategorized

 

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Big ol’ Pond Apple Sittin’ on a Knee—G-R-O-W-I-N-G

Big ol’ Pond Apple Sittin’ on a Knee—G-R-O-W-I-N-G

PA by John Bradford

[Don’t forget: floridagrassesandsedges.net]

The history of plant ecology is for good reason preoccupied with competition between and within species—-you know, survival of the fittest as the very motor of evolution.   On the other side of the uneven coin, mutual aid or maybe one-sided aid, facilitation, never gets as much stage time.  I’m sort of fascinated by it, also with cypress swamps. Let’s join the two.

There’s a long-standing perception that in favorable conditions competition dominates, and that in harsh conditions facilitation is more likely.  Obvious examples:—let’s say in the desert small plants “taking shelter” under scattered shade  trees, or in a Florida scrub smaller creatures taking refuge in gopher tortoise burrows.   Or In a flooded marsh you see small plant species clustering on the raised hummocks of larger plants.  This last example is close to today’s slightly more peculiar case of sizable trees seated preferentially on top of smaller plants. 

Floating fruits, big tough seeds by JB

I spend too much time in cypress swamps, and declare that today’s situation is not universal  It seems to be curiously situational.    Step carefully with me into the swamp just east of the main parking lot across from Jupiter Farms Road at the Cypress Creek Natural Area. (This is not a particularly aesthetic destination for a Sunday stroll,  with barbed wire,  broken glass, trash, and feral hogs.)

Pond Cypress by JB

What you see is a tall overstory of big beautiful Pond Cypress, with sunlight shining through now during the leafless season. There are several mostly small woody species in the understory, but the striking thing is that the vast majority of those plants are Pond Apples, most of them biggish,  averaging 16 inches diameter at the base.  I temporarily marked four corners in the swamp roughly 130 feet on each side, about 1/3 acre.     In that plot were 62 tree-sized Pond Apples under the Pond Cypress.  And now hold on to your funny looking hat,  51 (82 percent) of them were seated directly upon Pond Cypress knee mounds.   In many cases,  the knee mounds were so overtopped by the PA trees that little knees were merely peeking out modestly between the fluted flanges on the Pond Apple bases. One Pond Apple base per knee mound.

PC knees with no guest.

Are the Pond Apples taking over “on the backs” of the Pond Cypress?   Well, there is zero Pond Cypress apparent regeneration under present conditions,  although the big cypresses seem fine & dandy above their knee-squatters. Come back in a hundred years…or after the next hurricane or fire, then we’ll know who’s king of the swamp (for the moment).

Pond apple sitting on a knee mound. See the little light tan knee front center peeking out from under its larger friend?

You can’t keep a good knee down.

Any horticulturist can see those knee mounds are wonderful little raised garden beds complete with aerated compost and the ability to snag floating Pond Apple  apples.  So a coarse explanation of the knee-sitting is no big deal,  but the cool things in nature are more often the odd  little deals.

 
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Posted by on March 21, 2026 in Uncategorized

 

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ANNOUNCING! For the three people in the world who care…our old grass site (dating from 2004) is back online under a new url:   www.floridagrassesandsedges.net

ANNOUNCING! For the three people in the world who care…our old grass site (dating from 2004) is back online under a new url:   www.floridagrassesandsedges.net

click it here


therefore a classy grassy blog today…

Maidencane is as Smart as a Slime Mold

Panicum hemitomon  (Hymenachne hemitomon)


Slime molds are famously clever microbes. Put one on one side of a maze and a food tidbit on the far side,  and the slimer triumphantly solves the puzzle.  Sort of.  It slithers hither and thither confined by the maze, extending throughout.  Eventually the widespread exploratory portion of the s.m. encounters the morsel, so the microbe concentrates on that pathway.   Think of bees exploring for flowers, with successful foragers establishing a collective route to the sugary blossoms. That brings us to today’s “thing.”   It is incredible how spreading rhizomatous marsh plants colonize and divide a marsh into single-species patches, maybe an exclusive acre of  Knotted Spikerush here, a  plue zone of pure Pickerelweed over there.   That quilt doesn’t form overnight.  Think of all the “exploring” by creeping rhizomes like giant slime molds: all the pushing, shoving, border disputing,  poisoning,  social climbing, and jostling until it is all sorted out into the patchwork we see from the boardwalk. Some patches have deeper water longer, or more nitrogen pollution, or muckier soil, giving different species patchy advantages according to their needs and tolerances,

We are not air snorkels.

Anyhow, I have a thing for cypress swamps, and enjoyed today a nice example of patchy life under the pond cypress,  with a twist—a single species free of competitors.    Astoundingly few non-woody plants grow on cypress swamp floors. Well yea, ferns, but ferns are ferns,  and you could count the remaining herbaceous species on your toes.    The floor of a cypress swamp is a fascinatingly narrow ecological filter:   suffocating seasonal flooding, a thick layer of duff and semi-decayed  needles,  seasonal deep shade,  and dry-season drying.    In the swamp I explored today one species was the absolute ruler, but very unevenly.   Maidencane Grass can stand up to the harsh swamp tortures, but across the swamp it ranges from dense expansive lawns, to modest clumps, to scattered individuals, to none.     

Many here

A few here

Not many here! All these photos a stone’s throw apart.

Patchiness is easy to envision when forced by competitors, but in the cypress swamp there’s a different pattern.  The strongest Maidencane growth is generally where the cypress trunks are fewest.  That is, within the swamp the cypresses are subtly patchy, probably having to do with varying hydrologic conditions combined with the occasional gap from treefall.  I don’t think the water conditions are the main control of the extreme Maidencane patchiness.  Although untested, the driving force appears largely to be the relative light conditions caused by uneven cypress positioning.   The Maidencane is probably fluctuating at the edge of its shade tolerance “in exchange” for a monopoly on the swamp understory herbaceous layer. Like a giant slime mold, it spends eternity floating and creeping around the swamp, “finding the food”  in relatively bright spots and fading out when prospects dim.

 
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Posted by on March 12, 2026 in Uncategorized

 

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Up and Downs in the Bald Cypress Swamp

Up and Downs in the Bald Cypress Swamp

Every introductory Biology textbook has a famous graphic,  a vertical seashore rock with its base in the ocean and its top exposed, home to barnacles.  Conditions toward the submerged rock bottom differ from conditions rising to the splash zone.   If one barnacle species is alone it spreads out up and down the rock as far as it can tolerate in both directions.    But if there are two species,  one may compete the other into a narrower portion of the rock.  And, having divvied up the habitat vertically, everybody coexists in two stacked bands.

Welcome to Biology class! Barnacle social life.

There’s a better example in our local Bald Cypress swamps, although the competitive dynamics differ.    In a swamp there’s a rough tendency toward four stacked rings on the cypress lower trunks rising from the seasonally submerged base to above the high water line.    The vertical changes in conditions bottom-up make the barnacle stacking seem simple.  Here is a Cypress Creek report from yesterday.  From bottom up, the four bands are dominated by four species, each with features suited to its position relative to the flooding pattern. This is a nice example of an “ecological filter” at work, allowing occupancy only to competitors with the right abilities to pass through the filter.  A shady swamp with rising and falling water is a fairly harsh filter.

By John Bradford

The bottom band (1) Sematophyllum adnatum, a common widespread moss, here surviving at the tree base well below the high water line.   It lives on smoother bark than the flaky bark at and above the water line.  Terrible place to grow!  At high water, dark, muddy,  suffocated.    Perhaps the reason it “owns” this band is the ability to cling to life under nasty mudwater for extended periods.   Then when conditions improve,  it creeps across the base as a tiny weedy vine reclaiming space.  Probably nobody has ever measured the growth rate, but I’ll bet it is fast, the cheap thin leaves being a clue to quick recovery.   This species is not fighting crowded competition, but rather floodwater.

Moss 1. Sematophyllum creeping.

The second band (2) moss is Syrrhopodon texanus presiding presides over the rising and falling water line.   The Syrrhopodon band can sometimes be particularly widedancing with the fluctuating water line. It often has its own “sub-bands”   functioning as  timestamps from happy times (about right) relative to the water line, and sadder times (when the water line was in a better place). That is, rising and falling water leaves a record on the Syrrhopodon mood.  Plants growing in subdued light often have comparatively dark leaves, as does this species.  The fit to the waterline lifestyle extends to reproduction.  Mosses mostly spread by airborne spores, but it makes more sense for a waterline grower to float from tree to tree by water.  This species and some relatives make tiny little floaters on their leaves which bypass the need for dusty spores to blow through the windless swamp.  Some species of Syrrhopodon have no known spore production at all. Now that we’ve climbed the trunk into better conditions, life is more competitive, and this moss tends to grow crowded with vertical stems, like high-rises in the big city.

Moss 2, Syrrhopodon at the high waterline.

Syrrhopodon in mixed moods.

Syrrhopodon releasing its leaf-tip floaties.

Rising to the third band, we’re above the water line with intermittent drying increasing as a threat.  From submerged, to following the water, line to drought—-all in a  lizard’s climb.  Moss (3) is Leucobryum albidum, also crowded and vertical-ish, but with a new feature.  In stead of dark green, it is whitish (leuco-), which ties in with that dangerous drying.  The leaves are a bit succulent with empty (white) cells that can store water. Micro-cacti!

Moss 3. Leucobryum. A wee bit succulent.

By the time we get to level 4, drying is a deadly threat, and the mosses cede the trunk to lichens, undisputed masters of life in high dry places.

Lichens now take over.

 
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Posted by on March 6, 2026 in Uncategorized

 

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Snow Squarestem is a Little Disturbed: From Hogs to Volcanoes

Melanthera nivea

(Melanthera means “black anthers,” and nivea means “snow”)

Asteraceae

SQS by John Bradford


Around here I tend to think of Snow Squarestem as a modest, attractive little native wildflower encountered occasionally trailside in moist areas.  But in some ways it looms a little larger.  The plants likes disturbance, and my encounter with it yesterday was along a wetland trail with the marginal soil torn asunder by feral hogs, which seemed to favor the plant. It comes up from the soil seedbank when the hogs or other disturbers disturb. I wonder how long the seeds (achenes) can sleep awaiting their moment.

By JB

Why think it rises from disturbed seedbanks?   There are places in Southern Mexico where slash and burn agriculture is practiced.  Farmers cut forest, burn the residue, grow crops over a limited period, and then move on.    Looking at post-abandonment recovery of such sites, ecologist Jorge Meave and others found Snow Squarestem to be the most abundant re-invader.  

To go from unsurprising to weird, in Nicaragua biologist Hilary Erlener and collaborators reported (in Pan-Pacific Entomologist Vol 92 2016) a species of ground-nesting bee to live adjacent to an active volcanic vent spewing poison gas and nasty ash.    The only plant nearby on the volcano, and feeding the hotfooted bee was Snow Squarestem.

Rising opportunistically from churned soil from the Central U.S. to Brazil,  you might say Snow Squarestem is a mighty colonizer, despite its humble aspect.  Mighty colonizers must make a ton of seeds to deposit in the seedbank.  Some weeds, such as Dandelion, do that by skipping pollination altogether. But maybe a “more textbook”  approach is to be very good at getting pollinated, as pollination spawns seeds—whether in Kentucky, Mexico, or Guyana.   That wide range of places might imply “welcoming” a corresponding wide range of pollinators.   Seems true.  Below are those I managed to snap standing like paparazzi a few minutes yesterday by a clump (and that was merely one clump in  one place at one time,  and I missed some).   The plant most certainly entertains all visitors.

Yesterday:

 
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Posted by on February 27, 2026 in Uncategorized

 

Airplant Forensic Files

Potbelly AP by John Bradford

Ever notice, especially around Pond Cypress, how the Airplants, mostly Northern Needleleaf (Tillandsia balbisiana) and sometimes Potbelly Airplant (T. paucifolia) tend to be spaced far apart as if they don’t like each other?  

Often a foot apart or more, or one to a branch?   That’s just odd with no “yea that’s it” explanation.

I am a rock, I am an island

I’ve read the contention that they land and sprout infrequently, so that the wide separations are merely a random pattern.  Great from the armchair, until you go ground-truthing.  It is easy to find young Tillandsias close together on Pond Cypress branchlets, with under an inch separation, far closer than any big ones.  Some of the small individuals might be Ball-Moss (Tillandsia recurvata), the seedling identifications needing a better look.  The separation of large individuals seems likely to result from deaths of little losers in between.  

Young tillandsias just inches apart on Pond Cypress.

It’s been suggested that the larger tillandsias shade out the small ones, but there is no appreciable shade from a Tillandsia. AI, when consulted, cooked up the idea that the tree branches have “just so many” suitable establishment spots, but even if so, why would they be widely spaced?    And I can’t find anything special about the attachment spots, unless emerging Pond Cypress branchlets knock some off.

Does it have to do with the pattern of lichens on the branches, maybe some lichens eliminating tillandsias perched on the lichens?   That would be interesting, but I can’t find lichen kill zones. Do the tillandsias compete for nutrients or water running along the stem in rainwash, forcing the competitors to “spread out”?   But tillandsias use their roots for clinging, not to my knowledge for taking in nutrients, that seems implausible. What about toxin released by bigger tillandsias into the stemwash knocking off smaller competitors?   However, how often is there stemwash, and look how tough those non-absorbent roots are.   Naw, I don’t think so.

Maybe the spaced-out pattern has to do with wind and storms?   Do Pond Cypress branches with multiple tillandsias  “catch” too much wind and then twist, twerk, bust, sag, greenstick fracture, snap, or decay off?   Is one more airplant the last straw?   HMMMMMMM. Seems stretchy, but when you’re out of better ideas.  After all, the Tillandsias do have to grow exposed “out on a limb” (skinny twig) with few cypress leaves leaves where there’s plenty of sun (and wind).  One additional point in favor of this explanation:   the boring explanations often turn out to be right.  I learned that from Forensic Files!

So to sum it up. I don’t know. The “literature” doesn’t seem to know.  Generative AI generates bad ideas. Grasping at straws, I’m grasping at violent thunderstorms over-stressing over-loaded brittle exposed Pond Cypress branchlets. If you come up with the right answer, judged by its obvious “Eureka” correctness, you win a bushel of bragging rights.

Is that upstart right of center a “little too close” to the bad boy on the right? Trouble brewing?

 
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Posted by on February 20, 2026 in Uncategorized

 

Pond Apple Has a Wavy Ventilation Grille

Pond Apple Has a Wavy Ventilation Grille

Went to check wild plant damage from the recent freeze.   Interesting how there is worse trouble out in natural areas than “in town,” a demonstration perhaps of the “urban heat island effect”  arctic blast protection by buildings, hedges, and fences.   The shrub damage out in the boonies is dramatic.

Checking the vitals of damaged twigs, I thumbnail-scratched the thin outer bark skin off of a few expecting to find a nice living green layer as in most healthy branchlets.  But Pond Apple exposed an outer bark surprise.

Pond Apple by John Bradford

As you may know, PA is a swamp creature. Plants in floody places cope variously with  periodic or perpetual wet feet.   Big problem:  sustaining life where sogginess smothers normal life processes.   Ventilation becomes a special challenge in the wet world,    Soooo, to get to the point, scratching revealed a ventilation trait in Pond Apple new to me and kinda fascinating, at least to somebody with not much more going on. Upon scratching off  the topmost bark skin, Pond Apple reveals the pretty wavy grille you see on the left below.  The dark curvy lines are firm “wood.”   The light areas in between are soft and porous.   If you cut across the branch you find that those soft porous cups are the expanded ends of wood rays.   Wood rays are soft living veins  extending deep into the wood.    They function like my veins, helping to “circulate” water, nutrients, starch, and dissolved gases.   Hey, I like this vein analogy.   My veins meet the air in my lungs.    It looks like the Pond Apple “veins “  meet the air via those soft cup areas which  funnel air directly into the wood rays.  The outer bark seems to work as a big lung. That must helps with swamp ventilation. 

Left. The bark outer surface with skin removed. Light porous cups between wavy walls of dark wood. Right. The thin outermost skin is at the far left. The cups are seen cut across, with the red lines pointing at the outer edge of one cup. The rays connected to the cups are seen extending into the wood. The border between bark and wood is the dark curved vertical line along the center of the photo near the cup bases.

Now, a pest might say, “can’t you have air enter other trees through the bark, and wouldn’t rays have to broaden or be broken up as the branch expands?” Sure, in fact, the little corky “lenticel” spots  on branches allow gas exchange.  But it looks like swamp Pond Apple took that subtle commonplace ability and exaggerated it up into air injection turbosupercharger  for life in the wet zone.

 
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Posted by on February 14, 2026 in Uncategorized

 

All Creatures Have Their Positive Traits…

Brave work by John Bradford

You ever see those questions on social media along the lines of, “if you had a billion dollars what would you buy”, or,  “if you could go back in time what would you change,” or how about, “is there anything you would exterminate if you could?”    That’s easy:  Imported  Fire Ants!

Well, not so fast now, something I noticed today exploring a swampy shoreline in Cypress Creek Natural Area is how much some plants loves big ant mounds.   Several species seemed to benefit, with the most bodacious beneficiary being  Yellowtops (Flaveria linearis).  All along the shoreline millions of Yellowtops were dead-ish aboveground and defeated.  But not around the bases of the ant mounds.   There the Yellowtops and associates are thriving…big, green, plump, expanding.   Would you expect a species typical of nutrient-poor soils to be opportunistic when it comes to “bonus” nutrition?   Yes, that is a big problem with cat-tails, and harmful algal blooms.    But Yellowtops never hurt anybody.  In fact, they have a star role in contemporary photosynthetic-nutritional research. That probably ties in to their big boost from fire ants.

Flaveria (not this season) by JB.

What are the ant-loving plants getting?   Easy to guess.  Fire ants tote all manner of organic matter back to the nest, enriching the earth with food debris and ant waste. Benefits to mound-side plants are documented for potassium and phosphorus, interesting given that phosphorus tends to be limiting in Florida wetlands.  I’ll bet the plants are getting nitrogen aplenty too.

Hell with a yellowtops halo today

They are also getting soft “tilled, raised, and aerated” soil, obviously dandy at a waterlogged shoreline.   That porous mega-mound looks like it sponges up water at dry times, and drains freely when wet. An then of course there is that defensive perimeter!   What herbivore is going to bother a fire ant ant garden?

Doing today’s photography I kinda made that mistake.  Did you know those odious ankle-biters have secret tunnels radiating from the main mound?    When you ease up close with camera, they sneak up behind from their subway and strike with no appreciation for the one moment they are being appreciated!

 
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Posted by on February 9, 2026 in Uncategorized

 

Tillandsias: Woolly Coats Tonight

Tillandsias: Woolly Coats Tonight

Tonight around my house in Jupiter the temperature is planning to drop to 28 degrees. Hey, icicles don’t happen here (often).   That being so, we better talk about plants in relation to temperature.   Anybody with a car knows that as you drive northward in Florida in winter, every gas stop (clean restrooms at Buc-ees) is colder than the prior reststop.  Might be toasty in Miami and chillin’ in Jax. 

Tillandsia utriculata. All photos by John Bradford.

That being so, it might be fun to look at a large group of plants found across Florida and northward, and see how they deal with the latitudinal temperature gradient.   Hmmmmm, let’s see now,,,,I know!   Tillandsias!  There are lots of Florida species, each having a different N-S range, and each having different relevant leaf traits.

T. setacea

To make a fun evening of data gathering short, using mostly adjectives in the Flora of North America, you can rank the Florida native Tillandsia species by fuzziness, and by leaf roundness (from nearly flat to pencil-shaped). Here’s what I determined.

Skeptics are welcome to scrutinize Flora North America data (it is online) to see if they agree. (If not, please contribute $25 to the Florida Native Plant Society in lieu of emailing me.)

Does having a fur coat help keep a plant safer from frost?   Let’s see.

T. paucifolia

Flat things freeze faster than round things, because flat things have a lot of surface area exposed, and not much thickness to hold heat. Does having roundish leaves help protect leaves from frost?  

T. balbisiana

The graph below…as skimpy as it is…looks like fuzzier Tillandsia leaves  help as the species expand northward, and so does the color-coded leaf flatness. (1= flat, 4=round).

Brrrrrrrrrrrrrrrrrrrrrrrrrrrrrrrrrrrrrrrrrrrrrrrr

 
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Posted by on January 31, 2026 in Uncategorized