A Snip­pet: Thio­ploca

by Elio

The seafloor off the coast of Chile is car­peted with bac­te­r­ial mats of gi­gan­tic pro­por­tions. They cover an area as large as that of the state of Al­abama. Their to­tal weight is of the or­der of 100 mil­lion tons, which prob­a­bly makes this the largest sin­gle species mi­cro­biome on Earth. The mats con­sist of huge fil­a­men­tous bac­te­ria of the genus Thio­ploca — sul­fur ox­i­diz­ers that live within a sheath that can be as long as 15 cm. The bac­te­ria them­selves are quite large, around 60 µm in length and are arranged end to end within the sheath to form very long fil­a­ments. Each sheath con­tains a bun­dle made up of as many as 100 fil­a­ments. (Fig­ure 1) The cells are un­usu­ally wide, in some species 12 – 22 µm in di­am­e­ter, in oth­ers reach­ing 40 µm. Their gi­ant size is due to a large vac­uole, just as in the largest of all known bac­te­ria, Thiomar­garita nami­bi­en­sis. For more on these ex­tra­or­di­nary or­gan­isms, see our pre­vi­ous post.

Fig­ure 1. Fil­a­ments of two dif­fer­ent species, Thio­ploca chileae (18 – 20 µm Ø) and Thio­ploca arau­cae (31 – 35 µm Ø) in the same sheath. Typ­i­cal are the sul­fur droplets in the cy­to­plasm, which arise from the first step of H2S ox­i­da­tion. Source

Thio­plo­cas are close rel­a­tives of the Beg­gia­toa, an­other group of gi­ant bac­te­ria that ox­i­dize sul­fides and that also make gi­ant mats in ma­rine and fresh­wa­ter en­vi­ron­ments. For a re­view of the phy­logeny of these and other gi­ant bac­te­ria, see here (see also Fig­ure 2).

Fig­ure 2. Ex­am­ples of mor­pho­log­i­cal vari­a­tion among the large sul­phur bac­te­ria. Source

Many of these or­gan­isms ox­i­dize sul­fides us­ing ni­trate as their elec­tron ac­cep­tor. But, so do­ing, they face a prob­lem, namely that sul­fides are abun­dant in the ben­thic sed­i­ments, ni­trates in the sea­wa­ter. How to ac­cu­mu­late both? To solve this prob­lem, the cells com­mute within their sheaths, trav­el­ing down­ward to load up with sul­fides, up­ward to fill their vac­uole with ni­trates (which they ac­cu­mu­late at con­cen­tra­tions hun­dreds of times that of sea­wa­ter). They travel the sheaths at speeds of about one cen­time­ter per hour. In other words, they take an el­e­va­tor to work. Ah, the sur­prises at the bot­tom of the sea!

 

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