The China Mail - Spinal cord implant helps paralysed patients walk again

USD -
AED 3.672984
AFN 63.999698
ALL 80.977186
AMD 362.830125
ANG 1.790365
AOA 917.99975
ARS 1522.824962
AUD 1.439232
AWG 1.8025
AZN 1.700271
BAM 1.722428
BBD 2.015086
BDT 123.012972
BGN 1.683441
BHD 0.377003
BIF 2995
BMD 1
BND 1.277405
BOB 12.040458
BRL 5.1702
BSD 1.000454
BTN 95.892522
BWP 14.09417
BYN 3.010995
BYR 19600
BZD 2.012171
CAD 1.422375
CDF 2309.999922
CHF 0.83543
CLF 0.024662
CLP 973.780211
CNY 6.70475
CNH 6.709205
COP 3319.17
CRC 456.985341
CUC 1
CUP 24.01166
CVE 97.750209
CZK 21.552505
DJF 177.720292
DKK 6.594725
DOP 59.48895
DZD 133.867992
EGP 51.941799
ERN 15
ETB 163.421342
EUR 0.882129
FJD 2.24725
FKP 0.756991
GBP 0.75395
GEL 2.605011
GGP 0.756991
GHS 11.743978
GIP 0.756991
GMD 73.501138
GNF 8798.844552
GTQ 7.643396
GYD 209.328131
HKD 7.84715
HNL 26.859007
HRK 6.646198
HTG 130.939066
HUF 323.268496
IDR 17933
ILS 3.07365
IMP 0.756991
INR 95.98395
IQD 1310.606294
IRR 1693792.497294
ISK 120.849935
JEP 0.756991
JMD 158.336929
JOD 0.70903
JPY 157.34008
KES 129.6597
KGS 87.448702
KHR 4057.22564
KMF 434.999712
KPW 900.000318
KRW 1355.549791
KWD 0.30888
KYD 0.833726
KZT 440.074329
LAK 22455.503791
LBP 89592.031739
LKR 330.60617
LRD 171.583824
LSL 16.385613
LTL 2.95274
LVL 0.60489
LYD 6.399
MAD 9.713019
MDL 17.763022
MGA 4394.578552
MKD 54.223526
MMK 2099.600314
MNT 3599.1704
MOP 8.086624
MRU 40.069045
MUR 47.690165
MVR 15.449751
MWK 1734.754084
MXN 18.069545
MYR 4.080597
MZN 63.909822
NAD 16.385685
NGN 1327.250239
NIO 36.821108
NOK 9.61761
NPR 153.428035
NZD 1.77502
OMR 0.384501
PAB 1.000449
PEN 3.44424
PGK 4.528402
PHP 62.7685
PKR 277.158584
PLN 3.84925
PYG 5852.979771
QAR 3.647324
RON 4.651102
RSD 103.696974
RUB 83.375398
RWF 1477.228194
SAR 3.755513
SBD 8.032647
SCR 13.837787
SDG 601.499865
SEK 10.00663
SGD 1.277635
SHP 0.755829
SLE 24.650049
SLL 20969.491881
SOS 571.727998
SRD 37.621498
STD 20697.981008
STN 21.576683
SVC 8.75393
SYP 13002.000254
SZL 16.377071
THB 33.6035
TJS 9.214436
TMT 3.51
TND 2.978697
TOP 2.40776
TRY 49.015799
TTD 6.787408
TWD 31.877403
TZS 2640.002997
UAH 44.690709
UGX 3921.672237
UYU 40.308767
UZS 11835.41907
VES 857.98905
VND 25962
VUV 119.008285
WST 2.76852
XAF 578.638992
XAG 0.016618
XAU 0.000240947889
XCD 2.70255
XCG 1.803098
XDR 0.707052
XOF 578.638992
XPF 105.029547
YER 236.39594
ZAR 16.42399
ZMK 9001.19938
ZMW 19.559579
ZWL 321.999592
SSP 5712.591899
MXV 2.045433
  • RYCEF

    0.4000

    19.71

    +2.03%

  • CMSC

    0.0000

    20.4

    0%

  • BTI

    0.4200

    56.05

    +0.75%

  • BP

    0.2800

    44.43

    +0.63%

  • RBGPF

    1.6000

    67

    +2.39%

  • RIO

    -0.1500

    94.41

    -0.16%

  • AZN

    -0.4300

    166.15

    -0.26%

  • GSK

    0.4600

    49.7

    +0.93%

  • BCE

    -0.4100

    20.56

    -1.99%

  • NGG

    -0.2500

    75.24

    -0.33%

  • VOD

    -0.0400

    16.58

    -0.24%

  • RELX

    -0.4500

    33.07

    -1.36%

  • BCC

    -0.5500

    76.59

    -0.72%

  • CMSD

    -0.0300

    20.27

    -0.15%

  • JRI

    -0.2500

    10.77

    -2.32%

Spinal cord implant helps paralysed patients walk again
Spinal cord implant helps paralysed patients walk again

Spinal cord implant helps paralysed patients walk again

In 2017, Michel Roccati was in a motorbike accident that left his lower body completely paralysed. In 2020, he walked again, thanks to a breakthrough new spinal cord implant.

Text size:

The implant sends electrical pulses to his muscles, mimicking the action of the brain, and could one day help people with severe spinal injuries stand, walk and exercise.

It builds on long-running research using electrical pulses to improve the quality of life for people with spinal cord injuries, including a 2018 study by the same team that helped people with partial lower-body paralysis walk again.

"It was a very emotional experience," Roccati told journalists of the first time the electrical pulses were activated and he took a step.

He was one of three patients involved in the study, published Monday in the journal Nature Medicine, all of them unable to move their lower bodies after accidents.

The three were able to take steps shortly after the six-centimetre implant was inserted and its pulses were fine-tuned.

"These electrodes were longer and larger than the ones we had previously implanted, and we could access more muscles thanks to this new technology," said Jocelyne Bloch, a neurosurgeon at the Lausanne University Hospital who helped lead the trial.

Those initial steps, while breathtaking for the researchers and their patients, were difficult and required support bars and significant upper body strength.

But the patients could start rehabilitation immediately, and within four months Roccati could walk with only a frame for balance.

"It's not that it's a miracle right away, not by far," cautioned Gregoire Courtine, a neuroscientist at the Swiss Federal Institute of Technology who led the research with Bloch.

But with practice, Roccati can now stand for several hours and walk nearly a kilometre. The Italian described being able to look clients in the eye, have a drink at a standing table and take a shower standing up thanks to the implant.

He and others in the trial were also able to climb stairs, swim and canoe.

- 'I see the improvement' -

The improvements depend on the electrical stimulation, which is triggered via a computer carried by the patient that activates a pattern of pulses.

Two of the patients can now activate their muscles slightly without electrical pulses, but only minimally.

By comparison, some patients with partial lower body paralysis treated in an earlier study are able to move their previously immobile legs and stand without stimulation.

The three men in the new trial were all injured at least a year before the implant and Bloch hopes to trial the technology sooner after an accident.

"What we all think is that if you try earlier it will have more effect," she said.

There are challenges: in early recovery, a patient's capacity is still in flux, making it hard to set a baseline from which to measure progress, and ongoing medical treatment and pain could hamper rehabilitation.

So far, the implants are also only suitable for those with an injury above the lower thoracic spinal cord, the section running from the base of the neck to the abdomen, because six centimetres of healthy spinal cord is needed.

The idea of using electrical pulses to address paralysis stemmed from technology used to regulate pain, and the researchers said they see scope for further applications.

They have also shown it can regulate low blood pressure in spinal cord injury patients and plan to soon release a study on its use for severe Parkinson's disease.

The team cautioned that significant work remains before the implant is available for treatment outside clinical studies, but said they receive around five messages a day from patients seeking help.

They next plan to miniaturise the computer controlling the pulses so it can be implanted in patients and controlled with a smartphone.

They expect this to be possible this year, and have plans for large-scale trials involving 50-100 patients in the United States and then Europe.

Roccati said he activates the implant daily at home and continues to get stronger.

"I see the improvement every day," he said.

"I feel better when I use it."

D.Wang--ThChM