Viewed from above, Planet Earth is a
riot of colours.
But there's one particular colour that
marks Earth out as special.
The colour that shows it's a living,
breathing planet.
Green.
Here we go.
Take a look at this little beauty.
This is Lysimachia glutinosa.
And I know it's not the most
glamorous plant in the world,
but its claim to fame is that it grows here
and only here,
on this one side of this one small island,
which makes it sound very fragile,
very vulnerable.
That couldn't be further from the truth.
Because in the story of this plant,
indeed all plants,
lies the story of our Earth.
It's a story that begins billions of
years ago...
..in the chaos of Earth's early years...
..before plant life transformed it...
..into a world of opportunity...
..as plants rose from the oceans...
..to conquer a hostile and alien land,
fighting and evolving through triumph
and disaster.
And just as they finally built the
perfect garden world,
their global domination almost wiped
out all life on the planet.
The story of plants begins deep in
Earth's ancient history.
Four billion years ago.
When the planet was an inhospitable world...
..shrouded in a noxious atmosphere of
methane clouds...
..and covered by an endless ocean...
..broken only by a few remote volcanic islands...
..with no sign of life.
But to find plants' ancestors,
you'd have to go about as far from the
surface as you can get.
In the depths of the oceans...
..sheltered inside geothermal vents...
..are something miraculous.
Extremophiles.
An extraordinary form of single-celled
life.
The ancestors of every living organism
on Earth,
including plants.
But they are stuck here.
At this point, their chances of making
the leap onto dry land...
..are virtually nil.
CHRIS SIGHS
Four billion years ago,
any dry land on Earth would have
looked like this -
black, barren, volcanic islands
peeping out of a vast ocean.
If plants had any aspirations to leap
out onto land,
it was going to be very rapidly
disappointed,
because this land was very
short-lived.
The Earth's earliest islands were made
up of basalt.
Solidified lava...
..that was easily devastated by
expl*sive eruptions...
..smashed by extreme tides.
This was no place for life.
So the question is,
and it's a big question,
how did plants forge a permanent base
on the land?
Because, if the Earth's only trick
when it came to land-building was volcanism,
it's very likely that that life
would've never made it out of the ocean.
What was needed was another
land-creating force,
and it came in the form of a
celestial intervention.
The culprits were giant asteroids.
Some nearly 60km in diameter.
More than four times the size of the one
believed to have caused the extinction
of the dinosaurs.
The consequences were
earth-shattering.
Fracturing our planet's crust...
..and triggering a process that would
re-write Earth's story.
Plate tectonics.
Vast subterranean plates were formed,
and where they meet and collide,
rocks like basalt,
along with sea water and sediment,
are pulled into Earth's fiery mantle...
..where they're transformed into a new
type of rock.
A rock with a superpower.
Granite.
So what is it about this hard, heavy,
unforgiving rock that sets it apart
from the crowd?
Well, rather counterintuitively, it's
its buoyancy.
Now, we know that ice is less dense
than water,
therefore ice floats in water,
therefore we have icebergs.
But it turns out that granite, here,
is 10% less dense than basalt.
So, when it's formed deep down inside
the Earth,
it naturally rises to the surface.
So you could say that the continents
on which we are walking
are vast floating granite icebergs.
So, when the tectonic plates collide
and the basaltic crust is forced down,
granite isn't.
Granite is pushed up,
where it's crumpled into these giant
mountain ranges that we see today.
And over the course of geological
time,
more and more granite accumulates on
the surface,
perched on those tectonic plates,
which are gyrating around the planet
in a grand continental dance.
Now, you may be wondering how we know this.
- Ten, nine...
Ignition sequence started.
- Part of the answer is that, since
the 1960s...
- Zero, all engines running.
- ..the space programme has provided a
unique insight
into the workings of our planet.
For the last 42 years,
we've been able observe the movement
of the Earth's tectonic plates
from orbit.
In 1976, Nasa launched Lageos -
the Laser Geodynamic Satellite -
which used a high precision laser
measuring system
and thousands of reflectors...
..to confirm the theory that the
continents
are constantly moving.
Nothing on Earth is staying still.
And by combining this data with other
measurements,
we've been able to rewind the clock,
to see how the continents have evolved
over hundreds of millions of years.
And what this tells us
is that one billion years ago...
..the surface of the Earth was a place
full of possibility and promise.
Vast granite landmasses covered the
planet.
All a potential home for life.
If only it could find its way there.
And, fortunately,
one life form was waiting in the wings,
ready to seize its opportunity.
Plants.
Life had migrated from the depths to
the shallows...
..in the form of marine algae.
The first instantly recognisable
plant-like organism on Earth.
They had mastered a revolutionary new
art.
Harvesting energy from the sun...
..using photosynthesis.
But before these plants could escape
the ocean,
they needed to overcome a hurdle...
..greater than anything they'd faced before.
It's quite difficult to get your head around
just what a challenge getting onto dry
land was for plant life.
The world that it would have to
overcome was harsh, hostile,
gravity bound, constantly battered by
storms, wind, rain,
UV light, pounded by hot sunlight.
So, just like these contemporary
relatives,
green algae rapidly chose the easy pickings,
living in those freshwater rivers and
lakes that formed
on the early landmasses.
Cocooned in the safety of the water,
where nutrients and minerals were abundant.
Life stayed in the water for 500
million years...
..until a moment about half a billion
years ago,
when, for reasons we don't entirely understand,
plants' ancestors set off into the unknown.
Making base camp on rocky sediments at
the water's edge.
Having evolved a thick waxy coating
to stop themselves drying out in their
harsh new environment.
But this brilliant adaptation proved
to be a double-edged sword...
..making it much harder to absorb the
nutrients they needed.
So, despite their best efforts,
they slowly dried out,
dying on the rocks.
But plants aren't the type to give up easily.
They just needed to find something to
help them.
And they did,
because, as it turned out...
..they were not alone.
Half a billion years before plants
successfully made it onto dry land,
it's believed that another group of
organisms were surviving
on these hostile early landmasses.
In this small rock are the fossilised remains
of Tortotubus protuberans,
a 440-million-year-old species.
Now, you can't see it.
It's 200 micrometres in length.
But its earlier ancestors were those
that were surviving on that land.
Their ongoing success was down to
their ability
to chemically degrade that substrate
to get nutrients.
They were feasting on the bare rock itself.
Now, if that sounds otherworldly, I've
got to tell you,
you probably know these organisms very well.
You might have even had some on toast
for breakfast this morning.
Because they're fungi.
The next waves of plant life making
their way onto the land
developed a new trick.
They evolved specialised cells that
could connect with fungi,
allowing them to trade resources
like nutrients and food between each other.
And this new, mutually beneficial partnership
turned out to be a match made in heaven.
This was truly a pivotal moment.
Fungi and plants had come together to produce
the first complex terrestrial
ecosystem on Earth.
Now, the plants got from the fungi
the nutrients they could extract from
the rocks -
and they repaid their fungal partners
with glucose,
the sugar product of photosynthesis,
using energy from the sun and CO2 from
the atmosphere.
And this symbiosis meant that plants
could survive
permanently on these new landmasses.
They'd finally made it out of the water,
and they were ready to start
conquering the world.
It's incredible to think that that
first collaboration
between fungi and plants would lead to such
an extraordinary relationship,
and one which would endure till today.
Look at this bracket fungus here,
growing on this log.
This species is all about decay and
decomposition,
but we mustn't think about fungi being
about death.
Here in the forest, they're very much
about life.
There's an extensive network of their hyphae,
their roots if you like, stretching
out into the woodland here,
intrinsically linking with the roots
of all of the trees.
And they are allowing them to share nutrients,
even communicate with one another.
And the key thing is that none of
these plants could survive
without the fungi
and the fungi couldn't survive without
the plants.
And yet we always think of them being
down here in the damp,
in the undergrowth, very much
subservient to the plants
which are up here, towering above them.
But in the earliest days of
terrestrial plants,
the situation couldn't have been more different.
The clues were strange circular fossils.
At first, scientists thought they were
ancient trees.
But, looking closer, they found
microscopic filaments,
revealing them to be fungi,
but on a scale bigger than anything we
know today.
70 million years after plants and
fungi first teamed up,
something utterly astonishing has
happened to fungi.
They are now giants.
In the staggering form of
Prototaxites.
Gargantuan, leathery, spore-bearing
fungal monsters
standing an incredible eight metres tall.
They towered over the tiny plants
still clinging to the water's edge.
Before plants could challenge the
dominance of fungi,
they needed to come up with yet
another cunning plan.
The problem was that most of the
planet's surface
was just rock.
So, away from the water's edge,
where plants had ready access to that water,
they really had no hope.
As soon as any moisture appeared on
those impervious surfaces,
it drained away into the streams, into
the rivers, into the lakes,
leaving the rock too exposed, too dry
for plants to survive.
So, at this point, it did appear as if
the Earth would be
a fungal paradise for all eternity.
If the plants wanted to compete,
if they wanted to stake their claim on
the land,
they would have to change their
equation.
They needed some magic.
Today, plants are everywhere.
In every niche and every environment.
But almost all plants have one thing
that allows them to thrive.
Soil.
In the modern world, there are many
different types of soil.
Most, like this crumbling brown wonder
stuff here,
are made through the activities of
invertebrates, fungi,
bacteria, enzymes, all breaking down
organic matter -
like leaf litter or animal excrement -
and then mixing it with minerals that
have eroded
from the bedrock below.
And the result is this magical substance,
packed full of nutrients and,
essentially, able to hold moisture,
meaning that plants can get what they
want from it all year round,
those nutrients and that water.
But 450 million years ago,
there was no soil.
No soil because there were few or no
animals living on land
and precious little organic matter for
anything to work with.
The very idea of making soil was
seemingly impossible.
But plants weren't going to let a
little thing like that stop them.
So they began scratching the rock with
tiny root-like hairs...
..turning it to dust...
..which they mixed with enzymes
secreted by fungi.
But the truly transformative ingredient...
..was the plants themselves.
Generation after generation...
..laying themselves down to form the
magical substance
that would set their descendants free.
Fast forward 30 million years and,
thanks to soil,
plants have transformed.
They are much bigger
and in possession of brand-new
evolutionary tricks.
A vascular system that allows them to
move water
through their tissues.
And the first true roots that draw
nutrients from the soil
and support taller stems.
The colossal Prototaxites still tower
over them.
But now the soil offers fertile ground
for countless wind-borne, seed-like
spores released by plants.
Thanks to this, plants can finally
break free
and move away from the water...
..riding the wind far and wide,
spreading across plains and hillsides.
For the first time in history,
Planet Earth was turning green.
Ironically, there was a very real danger
that this new-found success
could have instigated
the beginning of the end.
You see, no matter how big we think it is,
the Earth is essentially a closed system.
So any massive increase or decrease in
the amount of plants
wouldn't occur in isolation,
it would have a profound effect both
then and now.
I mean, just imagine, if we were
monumentally stupid enough
to cut down all of the trees and
poison all of the plants,
then the amount of CO2 in the atmosphere
would rocket up, along with the
global temperature,
and the amount of oxygen would decrease.
So ultimately we wouldn't be able to breathe.
But of course, we wouldn't be silly
enough to do that.
400 million years ago, however,
the situation was the polar opposite,
there was a massive increase in the amount
of terrestrial plants.
And as a consequence,
the amount of carbon dioxide in the atmosphere
began to plummet.
In fact, in the first 30 million years
of the Devonian period,
it went down by 25%.
Now, given that CO2 is one of the most important
resources for terrestrial plants,
this had the potential to develop into
a very real problem.
You see, if plants wanted to continue
to grow bigger,
they were going to need some new,
well, inspiration.
The funny thing about plants
is that we generally think of them as
fairly inanimate.
But look closer and there's an awful
lot going on.
Such as the photosynthetic dance of
green chloroplast,
excited by the sunlight they capture.
But most incredibly,
looked at the right way,
you might almost swear
you can see them breathing.
Stomata - like tiny green mouths...
..taking in carbon dioxide
and exhaling oxygen and water vapour.
Back in the Devonian period,
most stomata existed only in plant
stems.
But falling atmospheric carbon dioxide
meant they needed
more stomata to absorb the same
quantity to survive.
The problem was where to put them.
The answer was as elegant as it
was revolutionary.
Leaves.
Just look at these beauties.
These are called elephant's ear.
Now, of course, the earliest leaves
were nowhere near as big,
but they were a similar triumph of
botanical form and function.
Waxy on top, keeping them waterproof.
And underneath, these strong ribs to
keep them flat.
Also, a greater surface area,
allowing many more stomata in here for
better gas exchange.
And on the top, that surface area
provides more room
for more chlorophyll to harvest more
sunlight from the sun.
But there is one problem with leaves -
they generate shade,
which promotes competition.
And this fired the starting g*n on a
race for light
that once again would completely transform
the surface of the Earth.
Leaves did far more than just allow
plants to harvest
more carbon dioxide.
They made photosynthesis more efficient,
which boosted energy...
..leading to the birth of a new magic ingredient
in the form of wood.
This wonder material led to the creation
of biological machines,
unlike anything Earth had ever seen.
With strong, durable trunks that could
push past
the competition towards the sunlight.
Trees.
For terrestrial plants,
trees represented a quantum leap forwards.
I suppose we could say
they were the epitome of everything
that plants had learned
up until this point.
Deep-rooted, long-lived
photosynthetic powerhouses,
perfectly adapted to exploiting all of
the resources
that they required.
And perhaps most ahead of its time was
Archaeopteris,
considered by many to be the first
true tree -
enormously successful,
fossils found all over the world.
And just like this contemporary Sitka spruce,
it had a timber trunk, thick bark and
lateral branches
covered with masses of green
photosynthetic leaves
competing for light.
And with that competition came the
need to grow ever taller.
And they did.
Until they towered above everything else,
reaching heights of 30 metres.
Earth was now on its way to becoming a
forest world.
A home for countless new species of plants
and insects at every level,
from the canopy to the forest floor.
The former masters of the land, Prototaxites,
were gone, never to return.
Fungi were reduced to life in the shadows,
where they've remained,
working their quiet magic, ever since.
The meteoric rise of plant life,
from uncertain pioneers
to undisputed masters of the land,
was complete.
It was a new chapter in Earth's story.
But this triumph brought with it
the threat of global catastrophe.
If you've never stood and gazed up
into the high canopy of a forest,
then it's something that I can
thoroughly recommend.
Because if you're in the right place
at the right time,
with the right species, you might see
something special.
So stand, stare and blink,
and look for a unique pattern.
You see, all of the branches and leaves
from neighbouring trees don't quite meet,
leaving a silvery line between them.
It's almost as if they're being kind
to their neighbours.
It's a phenomenon called crown shyness,
part of a peaceful process of evolution
which has allowed all of the species
in this ecosystem
to come together and live harmoniously.
And it works.
It's beautiful.
And when they're living,
these magnificent trees are providing homes,
shelter and food for a whole range of
different animals,
other species of plants and fungi.
And you know, even when they're dead,
even when they are dead,
they just keep giving.
Through this process of decomposition,
again, they're feeding animals, other
species of plants and fungi.
But it hasn't always been like this.
There was a time when it was different,
when intense competition was driving
an arms race
that produced a very dangerous substance,
a substance which could have led to
the end of all life on Earth.
The rapid spread of terrestrial plants
has changed the Earth.
Atmospheric carbon dioxide has fallen
even further,
causing global cooling.
In the southern hemisphere,
ice sheets have formed for the first
time
in more than a quarter of a billion
years.
But near the equator,
the climate is still extremely hot and
very wet.
Fluctuating sea levels have caused
huge deltas to form,
where vast carbon-hungry swamp forests
have sprung up...
..covering as much as 20 million
square kilometres.
A sweltering jungle paradise
teeming with life...
..where intense competition for light
has given rise to a whole host of new
plant species...
..who would go on to threaten the future
of terrestrial life on Earth.
The largest amongst them were
Lepidodendrons,
known as "scale trees",
towering up to an incredible 50 metres tall.
In many ways, we can see this as the
modern equivalent
of a carboniferous swamp forest.
It's certainly very swampy, soft underfoot.
And in spring and summer,
green, lush, very productive - as it
was back then,
when large scale trees proliferated
because their roots had adapted to
allow them to grow
on the land and beneath the surface of
the water.
But unlike these modern day cypresses -
and Archaeopteris, which preceded them -
their trunks were very different.
They weren't made of wood.
The interior was a soft, corky
material
and the exterior, a very robust, tough
structural shell,
which allowed them to perhaps grow to
50 metres
in as little as 15 years.
But maybe that tough structural shell
was just a little too indestructible.
Because when they finally matured and
died and toppled
into this oxygen depleted ooze,
they didn't decompose as modern trees do -
breaking down slowly, giving their
carbon back to the system.
No, those scale trees hung on to it,
they hoarded that carbon,
and the consequences for planet Earth
were astonishingly dire.
The floor of the swamp forests became
log-jammed
with fallen trees and decaying plant matter.
When this carbon-rich mixture was then buried
under millions of tonnes of sediment,
all the elements were in place for a
remarkable alchemy.
Under intense heat and pressure,
and consumed by the passage of time,
this vast swathe of plant material
was transformed
by the Earth into a new type of rock,
a type of rock that would come back to
haunt us.
Here we are.
It's coal.
Yes, coal.
And there's a seam of coal running
through this cliff here -
that black line -
which is constantly being eroded by
the wind, waves and rain.
Now, throughout the 60 million years
of the Carboniferous,
plants fixed carbon in the form of coal
to the tune of 100,000 million tonnes
every single year,
taking an enormous amount of free
carbon out of the carbon cycle.
And what this added up to was a deadly
downward spiral.
These carbon-hoarding swamp forests
had pushed the Earth to the brink.
In the frozen south,
the Archaeopteris forests are long
dead.
And to make matters worse,
atmospheric carbon dioxide is
plummeting fast.
Nearly a quarter of the world's land
is now buried beneath a blanket of ice.
Earth sits within a hair's breadth of
descending
into a snowball event...
..where reflection of the sun's rays
by the frozen surface
could lead to the total glaciation of
the planet...
..threatening almost all life on Earth.
This could've been the end of plants' journey...
..but for another timely intervention.
Beneath the frozen surface,
the giant tectonic plates that set all
these events in motion
in the first place
had been continuing their perpetual dance.
And over the 60 million years
of the Carboniferous,
they'd slowly been shifting the landmasses
where the swamp forests thrived...
..raising huge granite mountains in
their place,
which changed weather patterns,
denying water to the deltas below.
And with this intervention
about 280 million years ago,
most of the coal-producing swamps
dried up for good.
Atmospheric carbon dioxide began to rebound.
Temperatures rose...
..melting the southern glaciers...
..which eventually disappeared...
..setting the scene for a plant renaissance.
Allowing plants to diversify,
developing flowers and fruit,
grasses and grains.
Transforming their signature green
into a kaleidoscope of colour.
Evolving new species to exploit every
niche on the planet.
Right down to one side of one small island.
Like our old friend, Lysimachia glutinosa.
Plants' long journey has been an astonishing
four-billion-year struggle
from humble beginnings...
..through the deadly fight to escape
the water...
..to the countless generations that
have reshaped
the surface of our planet.
Transforming it from bare rock
to a lush and verdant home for life.
In the aftermath of all of these
tumultuous events
came a new world order.
That partnership of forces which had
been shaping the planet
found a harmony.
Even plants finally found a balance,
instinctively aligning the amount of
biomass on Earth
with the carbon cycle
and the composition of the atmosphere.
And this equilibrium has lasted more
than a quarter of a billion years.
You see, plants had taken up that role
as guardians
of the Earth's climate,
breathing in and out as and when required
and paving the way for the world that
we've inherited today.
This bountiful, blooming miracle.
This blue-green jewel.
This Eden.
How do scientists piece together what
was happening on our Earth
millions or even billions of years ago?
- Our planet has a 4.5-billion-year
history of change.
And when I say change, I mean radical, dramatic,
just astonishing change.
- This episode featured the bizarre
giant fungi, Prototaxites,
that dominated land over 400 million
years ago.
- Prototaxites was a fossil fungal spike.
They could grow up to be about 26 feet tall.
So about the size of a two-storey house.
- Not only are these one of the
strangest organisms
ever to grace the planet,
the only clue to their existence were
a series
of mysterious fossils first discovered
in 1843.
- So here you have this great big thing.
And when they started finding more of
them, they were like,
"Well, this is kind of like a trunk,
"or it's shaped like a chunk of wood."
But there's no wood.
There's no trees.
So what is this?
- Until, in 2007,
when microscope technology was able to
take a closer look,
revealing a cellular structure that
was strangely familiar.
- So what this is, is a very thin
slice of Prototaxites.
And we find that, unlike a log,
which would be full of woody cells,
instead we find a mass of these
fungal filaments.
- Looking at it more closely,
they realised the structures were
actually more similar to fungi.
- These were gigantic tree-like fungi.
- It creates, in my mind, one of the
most bizarre
prehistoric landscapes of all.
And it's a great example of how
ancient organisms
sometimes look completely different
from anything that's alive today.
- Sometimes the challenge isn't
identifying what a fossil is,
it's figuring out how the parts fit together.
As it was with Archaeopteris,
one of the earliest trees on Earth.
- Archaeopteris has a remarkable
fossil history.
So, first, the stem was discovered,
and they recognised it because of its
distinct type of wood.
And then, at the same time, they found
lots of fern-like foliage.
However, we didn't think they were connected
because they looked so drastically different.
- Scientists initially thought they
had two distinct plants.
- Eventually, someone found a specimen
that showed
the two structures connected.
And that's how we discovered that this
was all
part of the same plant.
- And so Archaeopteris was discovered...
..and another chapter of the story of
plants came into focus.
- Archaeopteris fundamentally changed
the Earth's landscape.
For the first time,
we had forests that we're so familiar
with today.
- Now, finding ancient fossilised
plant life is one thing.
How do we begin to learn about
geological processes
billions of years in the past?
Like the origin of plate tectonics, an
event still shrouded in mystery.
- Studying the onset of plate tectonics
is a hugely controversial area,
and that's because the evidence is
just so scant.
- An eye-catching new idea leads some
scientists to think
plate tectonics started with a bang.
- I would so love to have been there to watch
a 30-mile asteroid smash into Earth.
Now, I'd want to be out in space someplace,
maybe on the moon.
- But what's the evidence for such a
cataclysmic event?
- One thing that geologists can do is
they can pick out
small minerals from rocks and date
them using isotopes.
- For example, there are now evidence
for very large asteroid impacts -
in Australia, in South Africa -
and that seems to correlate with some
of the starting
of plate tectonics.
- Inside ancient rocks, geologists
have discovered spherules,
tiny droplets of melted material that form
under the intense heat and pressure of
asteroid impacts.
Modelling of these impacts indicates
that these massive bombardments
played a role in triggering plate tectonics.
- What happens if an asteroid hits
that crust?
Well, it smashes it like a plate
falling on the floor,
and those pieces get pushed down and
moved around.
And that's how the mantle and the crust
could begin plate tectonics.
- By hunting down clues today,
scientists can unlock the secrets of
the Earth's deep history,
allowing us to tell our planet's story
like never before.
We journey back to where it all began...
..to tell the story of our atmosphere.
How it emerged from a toxic orange hell
and transformed a violent ball of rock
into a beautiful, life-sustaining blue bubble,
unique in the universe.
If the Earth could talk, what would it
tell us?
Well, the Open University imagine how
it might answer
some of our questions.
To experience this interactive
presentation,
go to the website on the screen
and follow the links to the Open University.
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