The Fort Worth Press - 'Wetware': Scientists use human mini-brains to power computers

USD -
AED 3.672499
AFN 65.000097
ALL 79.955008
AMD 362.980675
ANG 1.790365
AOA 917.99981
ARS 1510.007398
AUD 1.403322
AWG 1.8025
AZN 1.70071
BAM 1.703666
BBD 2.01385
BDT 122.787991
BGN 1.683441
BHD 0.376916
BIF 3008.101045
BMD 1
BND 1.275784
BOB 10.173389
BRL 5.125501
BSD 0.999826
BTN 95.870627
BWP 13.559233
BYN 3.039547
BYR 19600
BZD 2.010976
CAD 1.399185
CDF 2310.999789
CHF 0.82431
CLF 0.024323
CLP 960.41986
CNY 6.70755
CNH 6.697625
COP 3168.93
CRC 447.299652
CUC 1
CUP 26.5
CVE 96.05007
CZK 21.177976
DJF 178.04878
DKK 6.511105
DOP 59.224739
DZD 133.738083
EGP 52.1279
ERN 15
ETB 160.975011
EUR 0.87096
FJD 2.215902
FKP 0.749304
GBP 0.74815
GEL 2.603821
GGP 0.749304
GHS 11.508761
GIP 0.749304
GMD 73.501407
GNF 8775.00026
GTQ 7.628953
GYD 209.155963
HKD 7.845025
HNL 26.920262
HRK 6.563203
HTG 130.679443
HUF 315.661025
IDR 17752
ILS 3.02645
IMP 0.749304
INR 95.78015
IQD 1310.5
IRR 1374599.999738
ISK 121.420082
JEP 0.749304
JMD 157.787456
JOD 0.709013
JPY 157.190501
KES 129.60389
KGS 87.449912
KHR 4052.999861
KMF 427.999984
KPW 900.000318
KRW 1381.760111
KWD 0.30859
KYD 0.833275
KZT 445.391986
LAK 22375.000375
LBP 89549.999586
LKR 331.62892
LRD 174.513126
LSL 16.239951
LTL 2.95274
LVL 0.60489
LYD 6.345046
MAD 9.523996
MDL 17.553136
MGA 4390.000013
MKD 53.593439
MMK 2099.69268
MNT 3599.361607
MOP 8.079878
MRU 40.04999
MUR 47.570343
MVR 15.449771
MWK 1736.999698
MXN 17.14813
MYR 4.082015
MZN 63.909536
NAD 16.240391
NGN 1332.090477
NIO 36.670231
NOK 9.416225
NPR 153.391986
NZD 1.74641
OMR 0.3845
PAB 0.99983
PEN 3.374503
PGK 4.445002
PHP 62.690982
PKR 277.174995
PLN 3.79332
PYG 5914.634146
QAR 3.644991
RON 4.582898
RSD 102.237989
RUB 84.499996
RWF 1471
SAR 3.713396
SBD 8.000512
SCR 14.786135
SDG 601.503419
SEK 9.80629
SGD 1.27587
SHP 0.747524
SLE 24.650427
SLL 20969.491881
SOS 571.00023
SRD 37.746502
STD 20697.981008
STN 21.6
SVC 8.749129
SYP 13002.000254
SZL 16.315014
THB 33.278499
TJS 9.223821
TMT 3.51
TND 2.912497
TOP 2.40776
TRY 48.784465
TTD 6.788328
TWD 31.812497
TZS 2651.607986
UAH 44.680662
UGX 3929.459623
UYU 40.200524
UZS 11825.000017
VES 847.4851
VND 26005
VUV 118.29149
WST 2.754822
XAF 571.312333
XAG 0.014998
XAU 0.000228
XCD 2.70255
XCG 1.802003
XDR 0.707052
XOF 571.312333
XPF 104.000105
YER 236.55041
ZAR 16.23662
ZMK 9001.1947
ZMW 19.622822
ZWL 321.999592
SSP 5664.022588
MXV 1.944118
  • CMSC

    0.1900

    20.67

    +0.92%

  • RBGPF

    0.0000

    69.99

    0%

  • NGG

    1.5700

    77.6

    +2.02%

  • BCC

    0.2200

    75.53

    +0.29%

  • RIO

    2.2500

    98.04

    +2.29%

  • BCE

    -0.2200

    22.28

    -0.99%

  • RELX

    0.1100

    34.38

    +0.32%

  • CMSD

    0.1600

    20.45

    +0.78%

  • RYCEF

    0.5200

    19.81

    +2.62%

  • GSK

    0.7700

    51.06

    +1.51%

  • JRI

    0.1100

    11.61

    +0.95%

  • BTI

    -0.0700

    56.02

    -0.12%

  • AZN

    3.2500

    166.14

    +1.96%

  • BP

    0.0400

    45.42

    +0.09%

  • VOD

    0.0600

    17.52

    +0.34%

'Wetware': Scientists use human mini-brains to power computers
'Wetware': Scientists use human mini-brains to power computers / Photo: © AFP

'Wetware': Scientists use human mini-brains to power computers

Inside a lab in the picturesque Swiss town of Vevey, a scientist gives tiny clumps of human brain cells the nutrient-rich fluid they need to stay alive.

Text size:

It is vital these mini-brains remain healthy, because they are serving as rudimentary computer processors -- and unlike your laptop, once they die, they cannot be rebooted.

This new field of research, called biocomputing or "wetware", aims to harness the evolutionarily honed yet still mysterious computing power of the human brain.

During a tour of Swiss start-up FinalSpark's lab, co-founder Fred Jordan told AFP he believes that processors using brain cells will one day replace the chips powering the artificial intelligence boom.

The supercomputers behind AI tools like ChatGPT currently use silicon semiconductors to simulate the neurons and networks of the human brain.

"Instead of trying to mimic, let's use the real thing," Jordan said.

Among other potential advantages, biocomputing could help address the skyrocketing energy demands of AI, which have already threatened climate emissions targets and led some tech giants to resort to nuclear power.

"Biological neurons are one million times more energy efficient than artificial neurons," Jordan said. They can also be endlessly reproduced in the lab, unlike the massively in-demand AI chips made by companies like behemoth Nvidia.

But for now, wetware's computing power is a very long way from competing with the hardware that runs the world.

And another question lingers: could these tiny brains become conscious?

- Brain power -

To make its "bioprocessors," FinalSpark first purchases stem cells. These cells, which were originally human skin cells from anonymous human donors, can become any cell in the body.

FinalSpark's scientists then turn them into neurons, which are collected into millimetre-wide clumps called brain organoids.

They are around the size of the brain of a fruit fly larvae, Jordan said.

Electrodes are attached to the organoids in the lab, which allow the scientists to "spy on their internal discussion," he explained.

The scientists can also stimulate the organoids with a small electric current. Whether they respond with a spike in activity -- or not -- is roughly the equivalent of the ones or zeroes in traditional computing.

Ten universities around the world are conducting experiments using FinalSpark's organoids -- the small company's website even has a live feed of the neurons at work.

Benjamin Ward-Cherrier, a researcher at the University of Bristol, used one of the organoids as the brain of a simple robot that managed to distinguish between different braille letters.

There are many challenges, including encoding the data in a way the organoid might understand -- then trying to interpret what the brain cells "spit out," he told AFP.

"Working with robots is very easy by comparison," Ward-Cherrier said with a laugh.

"There's also the fact that they are living cells -- and that means that they do die," he added.

Indeed, Ward-Cherrier was halfway through an experiment when the organoid died and his team had to start over. FinalSpark says the organoids live for up to six months.

At Johns Hopkins University in the United States, researcher Lena Smirnova is using similar organoids to study brain conditions such as autism and Alzheimer's disease in the hopes of finding new treatments.

Biocomputing is currently more "pie in the sky," unlike the "low-hanging fruit" use of the technology for biomedical research -- but that could change dramatically over the next 20 years, she told AFP.

- Do organoids dream of electric sheep? -

All the scientists AFP spoke to dismissed the idea that these tiny balls of cells in petri dishes were at risk of developing anything resembling consciousness.

Jordan acknowledged that "this is at the edge of philosophy," which is why FinalSpark collaborates with ethicists.

He also pointed out that the organoids -- which lack pain receptors -- have around 10,000 neurons, compared to a human brain's 100 billion.

However much about our brains, including how they create consciousness, remains a mystery.

That is why Ward-Cherrier hopes that -- beyond computer processing -- biocomputing will ultimately reveal more about how our brains work.

Back in the lab, Jordan opens the door of what looks like a big fridge containing 16 brain organoids in a tangle of tubes.

Lines suddenly start spiking on the screen next to the incubator, indicating significant neural activity.

The brain cells have no known way of sensing that their door has been opened, and the scientists have spent years trying to figure why this happens.

"We still don't understand how they detect the opening of the door," Jordan admitted.

P.McDonald--TFWP